12 October 2014

h y p e r s p a c e




Ceud mìle fàilte,

Herewith, I present to you a salient gift: a multisensory talisman of hyperspatial origin, a living, rheological meme flow of universal exploration—whether you be off dreaming between worlds, or out there transmuting dreams into reality in this one.

As a species, we continue forwards in our collective journey, scaling the cosmic ladder of evolution, progressing onwards and upwards, ever improving, expanding in scope and scale of standardized, objective metrics for suffering, compassion, empathy and pleasure. Crime rates continue to plummet. War is on a downward trend. Civil rights for women, minorities and alternative ways of life are transformed, liberated and recognized for the inherent uniqueness and immeasurable value that they express and impart to our communities, our social structures, and to the world. Applied medicine recursively redoubles in synchronized step with Moore's Law, as lifespan continues on its path to escape velocity.

Life is far less brutish and short than it used to be, persisting in its positive long-term upward climb—despite the inevitable eddies and flows, vortices and localized chaotic fluctuations. We've developed central heating and cooling, running water and plumbing, local and general anesthetics, antibiotics, vegetarian and vat-grown meat. Ligand-targeted gene therapies, next-generation neuroscience, nanoscience and designer pharmacology will soon expand and enhance the myriad array of available options and enhancements, so we may be empowered to paint our personal experiences—and the world around us—in tetrachromat, Technicolor rainbows, rather than the primitive Legos and erector sets of olden days yore. Awareness and empathy endure, prevail and flourish. Phonon-coupled Bose-Einstein condensates, linked in unity across relativistic spans of space and time, bring us new visions of contemporary gravity waves, reconciliation of relativity and quantum mechanics, and disruptive innovations, bound only by imagination, to take us to the stars. Mirror neurons recursively reflect our selves, our friends, our families, our communities, our homes, our whole.


Our understanding of ourselves, and of the world around us, undergoes seismic shifts of revolution after revolution and breakthrough after breakthrough. Matter becomes software. Software becomes mind. Networked computers act in light-speed limited synergistic symphony as quantum game theory yields novel Nash equilibria, transitions and extensions to the classical zero sum games of our fathers, our grandfathers, our ancestors. Our nation-state inheritance, historical dinosaurs and massive behemoths that they are, plod across the landscapes of memespace, reluctant to adapt, nonetheless transformed from within by wave after wave of irresistible cataclysmic social, physical and technological forces of positive revolutions.


As we expand our reach to space and venture outwards to other worlds, Earth comes into view as a destination—no longer limited as a point of origin, and the Overview Effect brings us together in innate recognition of our inherent fragility, unity and responsibility to steward the Earth for ourselves, for our children, and for our children's children. Access to information increases exponentially as cost inversely follows. The Internet allows minds such as our own to connect instantaneously across the globe—to bridge the gap, to share ideas that hold profound and positive potential to radically transform not just our own forward light cone—but to branch out and harness the influence of parallel and analogue instantiations of the Everett wavefunction, to calculate ancient, universal questions in the blink of an eye.


And this is just the beginning. We can scarcely begin to imagine what we will dream of, and bring into existence tomorrow. Wormholes, warp drives and closed timelike curves whisper themselves into being through our imaginations. ER = EPR. Entanglement is wormholes, forming the most fundamental of foundations—making allowance for the formation of spacetime itself. Learning effects across space and time and Everett branches mandate these myriad trends. Life itself is deeply infused with advanced quantum technology, as superposition unfolds through the expansive multiverse—a vast, active, living intelligent quantum learning architecture (VALIS) of untold depth and complexity, an adaptive, responsive, evolutionary genetic algorithm—advancing ever onwards to calculate and optimize the universal utility function across the state space of all possible observers.


As newfound technological tools convey manifold expansion to our most elegant expressions of precision, depth and complexity and we fumble less in our monkey bodies on this recursive upward trajectory, our ability to manifest mind in our local environment grows by leaps and bounds and orders of magnitude. Any sufficiently advanced technology is indistinguishable from magic, and any sufficiently advanced alien race is indistinguishable from God. At the end of our journeys, we will finally come to find that which we were looking for, and we will turn in reflection to find that the footprints we were following in the sand were our very own.

Christopher Altman                                                   

Every valuable human being must be a radical and a rebel—for what he or she must aim at is to make things better than they are. "
 Niels Bohr                                        

10 October 2014

Earth in True Perspective

The small green square in the photo to the left, a brief, single snapshot in time—what appears to be only a cold, empty void of absolute darkness, with nary a single star to be seen by the naked eye—in fact contains within the dark confines of its hazy boundaries the luminous wonders of over 10,000 beaming galaxies, each shining with the light of a trillion suns.

Back here at home, only a few short footsteps from your door, countless species of sea life and coral live out their lives: lush cliffs and caves, flora and fauna, and schools of fish, from tiny as needles, to larger than a great dane―millions of intertwined species, an interplay of flourishing ecosystems, locked together in singular symbiosis. An octopus drifts silently by, observing its surroundings in the stillness of soft, quiet reflection, as the full spectrum of the rainbow―liquid lines of chameleon color, glimmer just beneath its membranous skin.

With no moon, and no light above save for distant twinkles of starlight and the light of worlds light years away, two distant lightning storms on the East and West horizons bring intense contrast to the endless voids both above and below. As far as the eyes can see, no land interrupts this unbroken line of darkness. Complete blackness blankets the waters beneath, with the exception of phosphorescent plankton, which flash and glimmer like sparks in the night as we glide silently through the waters, or when softly stirred by a cool caress from the back of your hand. The dividing line between jet black sea and infinite sky is wholly absent, evoking a sense of leisurely drift through those deep, distant space nebulae—a synaesthetic, psychedelic experience, much akin to sensory deprivation.

The luminous arms of the Milky Way, usually no more than a faint trace across the sky when enveloped in the chaos and cacophony of our contemporary pachinko parlor-laced urban climes, still a dim spark, even, from deep in the meadows of a distant countryside—shine bright as Times Square overhead. An experience beyond words, evocative of the distinctive hallmarks called to mind through the end sequences of Contact, or Kubrick's 2001.

Across the universe, the distant void yields to powerful beams of light borne from nuclear fusion sourced deep in the hearts of a trillion stars, each shining radiant warmth and light down upon alien worlds. Consider, for the briefest of moments: the unimaginably vast number of living worlds that circle those other suns, in this tiny distant window of space and time alone. Each and every one holds, 'tween the span of its horizons, boundless wonders and volumes of mysteries—countless miracles of dazzling complexity that mirror our own richly-populated, endlessly intricate, fractal, yet familiar home world.

Imagine how many others just like you are out there right now, this very moment―looking up to us in curiosity and contemplation, through the dizzying, stellar symphony of unfamiliar constellations dancing their way across strange, alien nighttime skies. Each calls back to us through the unfathomable void, making their way across the vast expanse of more than thirteen billion light years of space and time.

                           – Christopher Altman




16 August 2013

Los Alamos Event Horizon


In Kona, on the Big Island of Hawai‘i in July 2013, I was extremely fortunate to finally meet a longtime inspiration in my workRichard Hughes—Director of the Quantum Institute at Los Alamos National Laboratory. 

LANL is where the Manhattan Project gave birth to the first atomic bomb—a project so cloaked in secrecy President Truman didn't brief his Vice President of its existence.  

Hughes now serves as Chairman of the US Government Quantum Roadmap. He was gracious enough to extend me an invitation to visit. 

When I extended my hand to greet him at that quantum optics conference, I remarked what an honor it was to meet—how the pioneering vision of his roadmap had inspired me in the course of my graduate studies. 

He replied, "To the contrary, it’s an honor for me to meet you—you inspired me!" 

I asked him, "How could that be? I was just a graduate student at the time." 

He pointed to my collection of reports submitted to the Director of US Advanced Research and Development Activity, moving on to the Disruptive Technology Office. 

Those reports were written in the course of my QUIST Program research in East Asia, headquartered in Roppongi Hills, Tokyo, Japan—traveling to leading national labs, universities and corporate research institutes across Europe and East Asia. 

The end product of the reports were disseminated to US scientists, agency directors and researchers all around the country. 

Hughes told me they profoundly influenced him to create the US Government's official Roadmap.  

Why — 

No formal assessments or national roadmaps had been yet undertaken at such an early time in the field—so he simply followed my lead in crafting national assessments, taking them on the archetypal example in drafting the official US Roadmap

Hughes's account of my historical contributions led to his extension of an invitation for me to visit the lab.

I asked, "How long should I schedule for my visit? Two days, two weeks, two months...?"

He winked. "You know, Los Alamos is a black hole. With all the exciting projects we have going on here, you might disappear altogether, and never leave ...

— This is what I wrote upon my return.

10 July 2013

The next frontier of quantum communications


Listening to Rupert Ursin's closing talk on Free-Space Quantum Communication towards Satellites

Over the last week, we shared the sunset from the summit of Mauna Kea, tracked binary star clusters and shining nebulae from telescopes atop the mountain, joined a round of native Hawaiian chants to give thanks to the land, the jungle and our ancestors in a hand-built, solar-powered treehouse deep in the rainforest — snorkeled through the same crystalline waters as the sea turtles and dolphins in Waikoloa Bay, enjoyed fresh coconut water and enchanted conversations on quantum mechanics and the nature of reality as whirling dervishes, beautiful dancers flitted around us at the naked drum circle of Kehena's black sand beach  took in arms-length views of active cliffside lava flows and giant, billowing sulfuric gas clouds, violently heaving and shaking the ground beneath our feet, erupting into massive steam columns as they crashed into the ocean, slicing through the thin ribbon of coastline interface between land and sea, dead in the middle of the night, miles from civilization ... 


The Next Frontier of Quantum Communications — with Richard Hughes, Tim Ralph, Wolfgang Tittel, Jaewan Kim and Masahide Sasaki at the IEEE Quantum Photonics and Communications Meeting, Hilton Waikoloa, Hawaii






02 April 2013


Alan Aspuru-Guzik granted tenure at Harvard University 
"Breaking news: I just found out I got tenure 10 minutes ago. Thanks to all my friends for their support!"
Alan Aspuru-Guzik
Quantum physicist Andrew White among new Australian Academy of Science Fellows University of Queensland  "Professor White  has built an international reputation through his work in quantum physics. His characterization of a quantum logic gate, the fundamental building block of a quantum computer, has set the standard in the field. His research has been published extensively in numerous high-profile journals such as Nature Communications, Science, Physical Review Letters, Proceedings of the National Academy of Sciences and New Journal of Physics."

22 March 2013

Anton Zeilinger elected to lead as new President of the Austrian National Academy of Sciences
Kurier.at Anton Zeilinger has been elected to lead as the new President for the Austrian National Academy of Sciences. He will begin serving in the position on July 1st of this year. 


Anton Zeilinger’s achievements have been most succinctly described in his citation for the Isaac Newton Medal of the Institute of Physics (UK), 

“for his pioneering conceptual and experimental contributions to the foundations of quantum physics, which have become the cornerstone for the rapidly-evolving field of quantum information. Anton is a pioneer in the field of quantum information and the foundations of quantum mechanics. He and his colleagues have demonstrated many world's-first achievements in the field, including quantum teleportation, entanglement swapping, dense coding, entanglement-based quantum cryptography, one-way quantum computation, multipartite quantum entanglement, and blind quantum computation. In addition, he has made many important contributions to the conceptual and experimental foundations of quantum mechanics, particularly in the areas of quantum entanglement and macroscopic quantum mechanics.” 
I lived and worked with Anton's group for two months on two consecutive Austrian National Research Fellowships for my research proposals to "Quantum Mechanics in Higher Dimensional Hilbert Spaces," and "What is Real in the Quantum World?" at the Austrian International Akademie, Traunkirchen, with Anton Zeilinger, Marcus AspelmeyerCaslav Brukner, Rupert Ursin, William Wootters, Christopher Fuchs, Daniel Greenberger and Michael Horne. 

Photos of the picturesque setting, and of the idyllic, crystalline lake in Traunkirchen, are available online here on Flickr.com.

Christopher Altman (front, center), Traunkirchen, Austria



Anton Zeilinger Selected to Serve as New Academy President

For some, he is the Austrian superstar of science. For others, because of his frequent public presence, he can be seen as a self-promoter. This much is not in dispute: The experimental physicist Anton Zeilinger (67) is one of those rare domestic scientists whose work has drawn the attention of the elite of the international scientific community. He sees science as few others do, through vivid and intricate experimental work—yet he taps into understandable language and easily reaches a lay audience. Now he will move to the top of the venerable Academy of Sciences (AAS) to convey his ideas as its chief.

"Mr. Beam," the "Quantum Pope," the "Pop Star of Science," "the Warlock from Vienna," as Zeilinger is sometimes called, with his graying beard and curly locks as a perfection of the stereotype of a scientist, enjoys widespread popularity despite sometimes facing criticisms. "The main reason he can convey such youthful enthusiasm is because he is an enthusiast himself."

Publicity never seems a motive for Zeilinger's work, recipient of the Club of Education and Science Journalists Award in 1996 for "Scientist of the Year". His motive is his enthusiasm for his subject. And so, as the award-winning physicist taught quantum physics to the Dalai Lama, discussed the meaning of life with Nobel laureates, and has always been set for even higher (Nobel Prize) ordinations. All this has been accomplished in a relatively short time—just looking back 15 years, when the physicist in 1997, with his teleportation experiments, made the breakthrough in the headlines through "beamed" quantum teleportation.

Research Timeline

Anton Zeilinger was born in May 20, 1945 in Ried, Upper Austria. He studied physics and mathematics at the University of Vienna, yet with "not a single hour attended to a lecture on quantum physics." He had to acquire his knowledge from books, as he writes in his book "Einstein's Veil" (2003). His PhD was awarded at the Atomic Institute of Helmut Rauch, with the "father of quantum optics in Austria," where he worked after graduation (1971) as an assistant. This period also saw his first research visits abroad, including Massachusetts Institute of Technology (MIT) in the late Nobel laureate Clifford G. Shull's lab (1994).

Anton made several other trips abroad before he returned to his homeland in 1990 as professor of the University of Innsbruck. In 1998 he moved to Vienna University, and since then there, to the Institute for Experimental Physics. In 2003 he also founded, together with the University of Innsbruck physicists groups led by Rainer Blatt, Rudolf Grimm and Hans Briegel, the Institute for Quantum Optics and Quantum Information (IQOQI), of which he also serves as the scientific director. Zeilinger also leads as physics Dean for the University of Vienna.

Zeilinger appears as a gifted experimenter, succeeding in sophisticated attempts to uncover altogether new relationships in Nature, and to confirm or disprove current theories, where he also repeatedly ventures back to the basics and the foundational principles of quantum physics. He works, and leads, in one of the most exciting and fastest growing areas of physics today: quantum technology. 


24 September 2012

Pentagon Field Operations for Disaster Relief and Humanitarian Aid

Synergy Strike Force operates under DoD directive 3000.05 to support humanitarian relief and stabilization efforts in post-conflict environments such as those in Afghanistan today. The group is comprised of specialists with various technical skills who carry access to a wide range of social networks, with operators functioning alongside and in the same capacity as special forces operatives.

These specialists live and work “outside the fence” on long-term deployments to the region, integrating with the local population, assimilating with them in culture, appearance, and in their native language. However—as an independent, autonomous unit under assignment from the Pentagon, the OSD, and under interagency intelligence community programs—personnel assigned to the task force can also come from outside the formal boundaries of the US Government.

Project initiatives include the provision of free and resilient power, water, communications and Internet access; solar-powered, amorphous, ad-hoc distributed intelligent cellular and radio communications systems, medical supplies, education, open-source mapping and hyperspectral and multispectral satellite resources to protect endangered civilians worldwide. One example of program success: the initiative provided more than two million Internet-enabled cell phones to Afghan youths, enabling them to take part in the global dialogue.

The project puts boots on the ground to save lives every day in Afghanistan, Pakistan, Iraq, in other Mideast and South Asian countries, extending operations to South America, with trained DIA, USAF and OGA officers who assimilate seamlessly with the local population in the field and in their native environment. The program is coordinated by former Principal Assistant Secretary of Defense Lin Wells II, PhD, who served as Chief Information Officer for the Department of Defense.

Over coming decades, widespread armed conflict is anticipated to continue to diminish. However, natural disasters such as earthquakes, hurricanes and tsunamis are anticipated to rise in frequency as a result of the impact of widespread environmental instability, giving rise to resource shortages in primary affected populations worldwide.

Linton Wells II, as former DEPSECDEF and DoD CIO, serves as US Force Transformation Chair, leading a wing of the Pentagon to take America’s military forward to meet this transition—to transform the United States armed forces from an efficient war-fighting machine into a unified force for disaster relief and humanitarian aid response teams in critical hot spots and third-world countries around the world.

The group further provides operations support at National Defense University (NDU), the Pentagon, and in the heart of the desert in Black Rock City, Nevada—where our camp provided the high-speed internet communications backbone for the core of the city via microwave internet field relays to the most proximate nearby town of Gerlach.

In previous years, critical injuries, such as broken bones, required the immediate and costly response of a helicopter medivac team to airlift the victims to the nearest main hospital in Reno, Nevada. The communications access provided by our team allows medical personnel and experienced X-ray technicians stationed on-site to locally diagnose these injuries, reducing the incident costs arising from inevitable accidental casualties.

The collective of Black Rock City itself serves as a large-scale technology, behavioral psychology and social network testbed, providing the world’s only experimental incubator for the study of a post-scarcity economy.

Rapid advances in nanotechnology, biotechnology, information technology, neuroscience and cognitive technology—enabled by the rapid technological progress of Moore’s Law doubling in computer processing power, speed and complexity—will converge to confer radical changes to our society over coming decades.

The subject of the post-scarcity economy is of intense scrutiny to government leadership and to intelligence organizations around the world—who would seek to justify their continued existence in perpetuity through the transitions enabled by this technological convergence—as concurrent advances such as those in nanotechnology and three-dimensional printing will make currency and corporations wholly obsolete.

Why go to the store to buy a computer, electronics or pharmaceutical drugs, when the open-source plans to manufacture and print them are widely available on the Internet? Witness the contemporary impact to the music and movie industries.

Major industry associations, such as the RIAA and MPAA, are embroiled in a losing power struggle to counter an existential threat to their foundations and their very existence—that threat of rampant music and Hollywood film piracy—which is enabled by widespread internet use and the widespread advent of file sharing technologies.

The post-scarcity economy was a principal thesis in my 2002 Chair Report from the UNISCA First Committee on Disarmament and International Security, “Converging Technologies: The Future of the Global Information Society,” distributed to principal government leaders around the world at UNISCA, the United Nations and the Executive Office of the President—then selected as recipient of the Information Security Award for Outstanding Achievement in Government Policy from RSA in 2004.

After side-by-side field assignments in Black Rock City, under operational mandate “Beta at Burning Man, not in Baghdad,” program demonstrations were conducted at the Pentagon and at National Defense University in conjunction with Operation STAR TIDES in Washington, DC.

23 May 2012


Tunable photon-ion entanglement enables quantum networks Nature | Innsbruck In Nature 485 and concurrent KurzweilAI press coverage, Rainer BlattTracy Northup, and Andreas Stute have constructed an interface for quantum networks that is both efficient and freely tunable—the first interface between a single ion and a single photon. "Whenever we have to transfer quantum information from processing sites to communication channels, and vice versa, we’re going to need an interface between light and matter," explains Northup. "This technique has two significant advantages over previous approaches that have entangled atoms with light: the efficiency with which we produce entangled photons is quite high and in principle could be increased to over 99 percent. But above all, this setup allows us to generate any possible entangled state.”




18 January 2012








Inaugural NASA Quantum Future Technologies Conference NASA Ames Research Center

NASA scientists joined the best quantum technology experts from academia, government and industry to identify new and exciting opportunities in space exploration, aeronautics, earth and space science where quantum technologies can have the greatest impact.

Conference topics included next-generation quantum experiments for measurements of time and distance, navigation, field sensing, and gravity wave detection; scalable quantum computing architectures and algorithms; quantum key distribution for practical secure transmission over long distances, including fiber channels, earth-satellite links, and space-based communications networks.


Collaborations forged from this conference led to our invited submission to NIAC, OCT and DARPA under QUINESS mandate to create the world's first global quantum teleportation network: Astronaut Development and Deployment of a Secure Space Communications Network, with colleagues Rupert Ursin, Colin Williams, Paolo Villoresi, and Vikram Sharma.

See also: World’s-first demonstration of Earth-to-space quantum teleportation

Conference Website
Live Videoconference Stream


Update
February 3, 2012 | Videos and presentations are now online at the conference website.

With special thanks to Pete Worden and Gabe Durkin.

12 September 2011

Quantum to Classical Crossover in Mechanical Systems Leiden 
Lorentz Center Workshop on the Quantum to Classical Crossover in Mechanical Systems 
In recent years there have been rapid developments in controlling micro- and nanometer-sized mechanical systems—to the point where quantum physics has become essential for understanding the dynamics of these systems. Quantized oscillations of mechanical resonators are now being discussed, and these have potential applications in the field of quantum information science.

New, fundamental tests of quantum mechanics—such as superpositions of states and entanglement between systems—are now within reach for macroscopic objects. These experimental possibilities provide new input to the discussion of how the classical world emerges from underlying quantum physics. A related question, whether quantum physics is needed to understand properties beyond those of the chemical reactions and molecular compositions of biological systems, will also be addressed. This Lorentz Center Workshop will bring together leading experimentalists and theorists in this field of research.

Workshop participants include Dirk Bouwmeester, Yaroslav Blanter, Herre van der Zant, Eva WeigMarkus Aspelmeyer, Hans Briegel, Andrew Cleland, Rosario Fazio, Philip StampWojciech Zurek, and many more.

11 July 2011



I've recently been selected to train as a scientist-astronaut candidate for commercial suborbital and developing orbital flights with a newly-formed, nonprofit endeavor that counts NASA/ESA astronauts, astronaut trainers and instructors among its astronaut corps and its board of advisors. I'm honored to be selected for the program, and tremendously excited about the opportunity. This is just the start of a long and challenging journey!
The nascent field of commercial spaceflight—and the unique conditions afforded by space and microgravity environments—offer exciting new opportunities to conduct novel experiments in quantum entanglement, fundamental tests of spacetime, and large-scale quantum coherence. In pursuit of these goals, we have the opportunity to inspire our next generation of scientists, researchers and engineers. 


Quantum Experiments in Space and Microgravity

23 June 2011

Extending coherence times in superconducting qubits Schoelkopf Lab | via Leo DiCarlo — In arXiv 1105.4652Schoelkopf et al  report novel implementation of a superconducting transmon qubit strongly coupled to a 5-cm, three-dimensional superconducting cavity, attaining reproducible extension in coherence times of both qubit (T1 and T2 > 10 μs) and cavity (Tcav ∼ 50 μs) by more than an order of magnitude compared to the current state-of-the-art superconducting qubits. "This enables the study of the stability and quality of Josephson junctions at precisions exceeding one part per million. Surprisingly, we see no evidence for 1/ f critical current noise. At elevated temperatures, we observe dissipation due to a small density (< 1 − 10 ppm) of thermally excited quasiparticles. These results suggest that the overall quality of Josephson junctions will allow for error rates of 10−4, approaching the error correction threshold to meet the DiVincenzo criteria for universal quantum computation. 





Time domain measurement of qubit coherence (a) Relaxation from |1⟩ of qubit J1. T1 is 60 μs for this measurement. (b) Ramsey fringes measured on resonance with (blue squares) and without (red squares) echo sequence. The pulse width for the π and π/2 pulses used in the experiments is 20 ns. An additional phase is added to the rotation axis of the second π/2 pulse for each delay to give the oscillatory feature to the Ramsey fringes.

12 June 2011

The Quantum Computer is Growing Up: Robust error correction in a quantum processor Rainer Blatt | Innsbruck | Science | KurzweilAI 

A more efficient algorithm for error correction in quantum computers has been demonstrated experimentally by physicists at the Institute for Experimental Physics of the University of Innsbruck and the Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences (IQOQI).

The physicists demonstrated the mechanism by storing three calcium ions in an ion trap. All three particles were used as qubits: one ion represented the system qubit while the other two ions represented auxiliary qubits. The system qubit was then entangled with the auxiliary qubits to transfer the quantum information to all three particles.

The physicists applied a quantum algorithm to determine whether an error occurred and, if there was an error, correct it. After making the correction, the auxiliary qubits were reset using a laser beam to enable repetitive error correction.

“For a quantum computer to become reality, we need a quantum processor with many quantum bits. Moreover, we need quantum operations that work nearly error-free; the third crucial element is an efficient error correction.”- Philipp Schindler



A team of physicists at the University of Innsbruck, led by Philipp Schindler and Rainer Blatt, has demonstrated a crucial element for quantum computers: repetitive error correction. This allows scientists to correct errors occurring in a quantum computer efficiently. The researchers recently published these findings in Science.

17 January 2011

Quantum Entanglement Allows "Teleportation in TimeMIT Technology Review "Conventional entanglement links particles across space. Now physicists say a similar effect links particles through time. Entanglement is so deeply enmeshed in the universe that a measurement in the past has an automatic, time-symmetric, influence on the future—and vice versa." –MIT Technology Review

17 December 2010

ScienceTop Breakthrough of the Year Science, UCSB Science Magazine has compiled the top breakthroughs of the year, awarding the most significant scientific advance of 2010 to Andrew Cleland and John Martinis (UCSB). "This year’s Breakthrough of the Year represents the first time that scientists have demonstrated quantum effects in the motion of a human-made object," said Adrian Cho, a news writer for Science. "On a conceptual level it extends quantum mechanics into a whole new realm. On a practical level, it opens up a variety of possibilities ranging from new experiments that meld quantum control over light, electrical currents and motion to—perhaps someday—tests of the bounds of quantum mechanics and our sense of reality. This last grand goal might be achieved by trying to put a macroscopic object in a state in which it’s literally in two slightly different places at the same time."

22 November 2010

TEDxCaltech | Feynman's Vision: The Next 50 Years Caltech In recognition of the 50 year anniversaries of Richard Feynman's visionary talk "There's Plenty of Room at the Bottom" and the inauguration of his revolutionary "Feynman Lectures on Physics," the Institute will host TEDxCaltech on January 14, 2011. TEDxCaltech will be a dynamic celebration of Feynman's spirit, curiosity, and scientific vision, and will take ideas worth sharing from Caltech out into the world by celebrating Nobel Laureate, visionary, and “curious character” Richard Feynman, with the theme “Feynman’s Vision: The Next 50 Years.” Speakers include Scott Aaronson, Immanuel Bloch, Sean Carroll, John Preskill, Lenny SusskindDavid Awschalom, Kip Thorne, Charlie Marcus, Don Eigler, Michael Roukes, Craig Venter, and many more.
Future holds key to quantum physics — Obama awards National Medal of Science to Aharono

The National Medal of Science  

As reported in USAToday, Yakir Aharanov of Chapman University was in Washington D.C. to collect a National Medal of Science this past week:

“The future is affecting the past—all the time, on the quantum level—allowing physicists to effectively select the future they want their particles to have, within limits, and amplifying the results for a desired outcome.”

“I really believe we are close to a second revolution in physics as big as the one a century ago," Yakir Aharonov says. "I feel we are only beginning to free existing quantum theory and to do so, we must think of time in another way.”

20 November 2010

Austrian Templeton Fellowship Traunkirchen
Quantum Physics and the Nature of Reality

— In tribute to quantum pioneer Michael Horne 

I'm recently back from two resident Templeton fellowships on Quantum Mechanics in Higher Dimensional Hilbert Spaces and Quantum Physics and the Nature of Reality at Austrian International Akademie Traunkirchen with Nobel laureate Anton Zeilinger.

Fruitful collaborations were borne from engaging discussions with inspiring pioneers in the field including Rupert UrsinMarcus AspelmeyerČaslav Brukner, William Wootters, Christopher Fuchs, Daniel Greenberger and Michael Horne

Christopher Altman (front, center), Traunkirchen, Austria
Creative discussions were enhanced by the tranquil setting of the former monastery, surrounded by mountainous scenery and clear blue skies reflected off the mirrored waters of Lake Traunsée. Overlooking the lake are Mount Traunstein, Salzkammergut, and the alpine mountain ranges spanning Upper Austria.

Photos of the picturesque setting and the idyllic, crystalline lake in the Austrian Alps are available online here


Zeilinger's achievements are most succinctly described in his citation for the Nobel Prize in Physics (2022) and the Isaac Newton Medal of the Institute of Physics: 


“For his pioneering conceptual and experimental contributions to the foundations of quantum physics
, which have become the cornerstone for the rapidly-evolving field of quantum information. He is a pioneer in the field of quantum information and the foundations of quantum mechanics.”


Zeilinger and his colleagues have demonstrated many world's-first achievements in the field, including quantum teleportation, entanglement swapping, dense coding, entanglement-based quantum cryptography, one-way quantum computation, multipartite quantum entanglement, and blind quantum computation. In addition, he has made many important contributions to the conceptual and experimental foundations of quantum mechanics, particularly in the areas of quantum entanglement and macroscopic quantum mechanics. 

IQOQI Deputy Director Rupert Ursin later joined up for a tour of Mauna Kea and the Big Island of Hawaii in close proximity to the IEEE Summer Topicals Meeting on Quantum Photonics and Communications in Waikoloa, where he spoke on The Next Frontier of Quantum Communications, sharing engaging discussions alongside long, meandering morning walks on the beach that gave birth to new collaborations with Richard Hughes, Chair of the USG Quantum Roadmap at LANL, Tim Ralph, Wolfgang Tittel, Jaewan Kim, and Masahide Sasaki

Soon thereafter I was fortunate to attend the inaugural NASA Quantum Future Technologoies Conference under the visionary leadership of USAF Gen. Pete Worden, PhD astrophysicist. Stimulating debates with longtime mentor Jon Dowling led to further research collaborations with Ursin, Williams, Sharma, Villoresi under the DARPA QUINESS Macroscopic Quantum Communications program through our team proposal, Astronaut Development and Deployment of a Secure Quantum Space Channel Prototype at the Pacific International Space Center for Exploration Systems

12 November 2010



Quantum computers may be much easier to build than previously thought Physical Review Letters physorg, arXiv "Quantum computers should be much easier to build than previously thought, because they can still work with a large number of faulty or even missing components, according to a study published today in Physical Review Letters. This surprising discovery brings scientists one step closer to designing and building real-life quantum computing system—devices that could have enormous potential across a wide range of fields, from drug design, electronics, and even code-breaking."

Moving Towards Quantum Computing New York Times "Three major technologies have the potential to move from demonstration computers to practical, highly powerful machines. 'We’re at the stage of trying to develop these qubits in a way that would be like the integrated circuit that would allow you to make many of them at once,' said Rob Schoelkopf, a physicist who is leader of the Yale group. In the next few years you’ll see operations on more qubits, but only a handful. The good news is that while the number of qubits is increasing only slowly, the precision with which the researchers are able to control quantum interactions has increased a thousandfold."

Seth LloydQuantum effects in Biological Systems MIT cbc.ca "Lloyd's biological research, funded by the US Defense Advanced Research Projects Agency, looks at how living things use quantum computation [...] Bird navigation, plant photosynthesis and the sense of smell all represent ways living things appear to exploit the oddities of quantum physics."

21 October 2010

Google Workshop on Quantum Biology "Surprisingly robust quantum effects have been observed in warm biological systems. At the same time, quantum information technology has moved closer to physical realization. This Workshop on Quantum Biology will examine the significance of mesoscopic quantum coherence, tunneling and entanglement in biomolecular membranes, proteins, DNA and cytoskeleton, with particular attention to recently discovered megahertz ballistic conductance in microtubules. Potential utilization of biomolecular quantum information in regulation of cellular activities will be addressed, along with implications for disease and therapy as well as the future development of quantum computation and artificial intelligence.List of Speakers includes Alán Aspuru-Guzik (Harvard), Anirban Bandyopadhyay (Tsukuba), Stuart Hameroff (Tucson), Masoud Mohseni (MIT), Hartmut Neven (Google), Jiří Pokorný (Czech Republic), Elisabeth Rieper (Singapore), Mohan Sarova (Berkeley), Jack Tuszynski (Alberta), and Luca Turin (MIT)
– Quantum Biology · Agenda · Abstracts · Biographies

13 September 2010

"We believe it is timely to set out on a distinct quantum biology agenda. The burgeoning fields of nanotechnology, biotechnology, quantum technology, and quantum information processing are now strongly converging. As quantum engineering and nanotechnology meet, increasing use will be made of biological structures, or hybrids of biological and fabricated systems, for producing novel devices for information storage and processing, to create [novel sensors], and for other tasks. If experiments can shed further light on our understanding of decoherence in biomolecules, at scales where equilibrium thermodynamics no longer applies, this may provide the required foundation for greatly accelerating our progress in manmade quantum computers." 
– Anita Goel, Gerard Milburn, Sandu Popescu, Jeff Tollaksen 
         (
Quantum Aspects of Life)

01 September 2010


Are we living in a designer universe
 
MIT, Sussex "Creating a new universe would require a machine only slightly more powerful than the LHC—and there is every chance that our own universe may have been manufactured in this way.
  – John Gribbin, Telegraph
"A basement universe possesses a fate independent of its parent: harnessing the zero-point energy to trigger inflation becomes a form of applied cosmological engineering. And if basement universes are a naturally occurring phenomenon, as suggested by inflationary cosmological models, the multiverse then takes on the characteristics of an evolutionary algorithm. Though the parent universe in any branching scenario need not have been of intelligent design, once a suitable set of cosmological constants is found through natural inflation, intelligent life could branch out from this point of origin, forming an expanding wavefront of intelligence and altering the evolution of the multiverse itself [...] 
Given that the conditions of the Drake equation are met, a potential explanation for the silence in our immediate neighborhood of the cosmos is that inter-universe panspermia supercedes local expansion. Vernor Vinge’s Singularity may not be only technological; it may be physical. The most powerful computer we can imagine would for all intensive purposes resemble a black hole."
   – C. Altman, Expansion Scenarios 

27 August 2010

Is reality even stranger than quantum mechanics tells us? 
"We know that quantum correlations can be stronger than classical—but why aren't quantum correlations even stronger? Either we are missing something very significant to define quantum theory, or these other theories are all around us too."
 – Caslav Brukner (New Scientist)