Nanotechnology Now – Press Release: Optical demonstration of quantum fault-tolerant threshold


Home > Press > Optical demonstration of quantum fault-tolerant threshold

a, Principle to implement physical qubits with the spatial modes of two entangled photons. And the experimental pattern on each photon is illustrated in b. Experimental results of the fault-tolerant circuits for the logical operation of single-qubit Hadamard gate are shown in c, and the results for the logical operations considering a following two-qubit controlled-not gate are shown in d. Fp and fp represents the success output probabilities for the encoded circuit and non-encoded circuit, respectively. The fault-tolerant manner is verified with Fp > fp.
CREDIT
by Kai Sun, Ze-Yan Hao, Yan Wang, Jia-Kun Li, Xiao-Ye Xu, Jin-Shi Xu, Yong-Jian Han, Chuan-Feng Li, Guang-Can Guo
a, Principle to implement physical qubits with the spatial modes of two entangled photons. And the experimental pattern on each photon is illustrated in b. Experimental results of the fault-tolerant circuits for the logical operation of single-qubit Hadamard gate are shown in c, and the results for the logical operations considering a following two-qubit controlled-not gate are shown in d. Fp and fp represents the success output probabilities for the encoded circuit and non-encoded circuit, respectively. The fault-tolerant manner is verified with Fp > fp.
CREDIT
by Kai Sun, Ze-Yan Hao, Yan Wang, Jia-Kun Li, Xiao-Ye Xu, Jin-Shi Xu, Yong-Jian Han, Chuan-Feng Li, Guang-Can Guo

Abstract:
It is of great importance to deal with experimental errors which could occur in every step of quantum circuits, especially in the implementation of quantum computation. Generally, as a straightforward thought to handle the errors, quantum error correction requires more qubits to accomplish the correction operation. However, the fault-tolerant method, in which logical qubits are encoded with several physical qubits and the error in the physical space is allowable and is not expected to be corrected, provides another way to treat the error by excluding the qubit with errors from the encoded space. To be more precise, based on the same hardware, logical qubits could be output with a better probability in the fault-tolerant encoded circuit than that in the non-encoded circuit when the error rate is below the threshold. More importantly, the fault-tolerant circuit could be verified in a small system consisting of several qubits. And the threshold, an explicit evidence to support the success of fault-tolerant method, could be determined when comparing the output probabilities of encoded circuits and non-encoded circuits.

Optical demonstration of quantum fault-tolerant threshold


Changchun, China | Posted on July 8th, 2022

In a new paper published in Light Science & Application, a team of scientists, led by Professor Chuan-Feng Li from CAS Key Laboratory of Quantum Information, University of Science and Technology of China, have exploited the spatial modes of two entangled photons to construct the experimental platform and have directly observed the fault-tolerant threshold for the investigated quantum circuits. With the physical qubits represented by coincident counts of the spatial modes of each photon, two logical qubits are encoded and manipulated through the corresponding operations on the physical qubits. Importing the error rate artificially with an extremely high accuracy, we could scan the range of error rate which covers the threshold. When the success output probability of encoded circuit is higher than that of non-encoded circuit, we can confirm the exact value of the threshold, which is supported by the strong results including the single-qubit and two-qubit operations in the logical space. Besides facilitating to investigate fault-tolerant quantum computation in scalable systems, this work is helpful for other quantum information tasks, such as entanglement purification and long-distance quantum communication.

With observing the error rate threshold, we could understand the detail framework of fault-tolerant protocols and judge the success of fault-tolerant manner with the prior information of error. These scientists summarize the performance of optical platform:

“We construct the setup based on the spatial modes of two photons which manifests the following advantages: (1) high-accuracy operation which is the rigid requirement of fault-tolerant circuit; (2) easy to import the artificial error and adjust its rate; (3) present the straight pattern of every step in the fault-tolerant process; and (4) easy to implement the fault-tolerant encoded circuit and non-encoded circuit.”

“Besides the error type considered in this work, other error models in a universal fault-tolerant protocol could be investigated based on this experimental platform. For example, with extending the experimental platform based on the optical spatial mode from single-photon framework to two-entangled-photon framework in this work, the nonlocal error effect could be further investigated in the fault-tolerant quantum computation.” the scientists forecast.

####

For more information, please click here

Contacts:
Media Contact

Yaobiao Li
Light Publishing Center, Changchun Institute of Optics, Fine Mechanics And Physics, CAS

Office: 86-431-861-76851

Expert Contact

Chuan-Feng Li
University of Science and Technology of China

Copyright © Light Publishing Center, Changchun Institute of Optics, Fine Mechanics And Physics, CAS

If you have a comment, please Contact us.

Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.

Bookmark:
Delicious
Digg
Newsvine
Google
Yahoo
Reddit
Magnoliacom
Furl
Facebook

Paper:

News and information


Electrically driven single microwire-based single-mode microlaser July 8th, 2022


Deep-ultraviolet nonlinear optical crystals: Concept development and materials discovery July 8th, 2022


Photoinduced large polaron transport and dynamics in organic-inorganic hybrid lead halide perovskite with terahertz probes July 8th, 2022


Scientists capture a ‘quantum tug’ between neighboring water molecules: Ultrafast electrons shed light on the web of hydrogen bonds that gives water its strange properties, vital for many chemical and biological processes July 8th, 2022

Possible Futures


Scientists capture a ‘quantum tug’ between neighboring water molecules: Ultrafast electrons shed light on the web of hydrogen bonds that gives water its strange properties, vital for many chemical and biological processes July 8th, 2022


New iron catalyst could – finally! – make hydrogen fuel cells affordable: Study shows the low-cost catalyst can be a viable alternative to platinum that has stymied commercialization of the eco-friendly fuel for decades because it’s so expensive July 8th, 2022


Led by Columbia Engineering, researchers build longest, highly conductive molecular nanowire: The 2.6nm-long single molecule wire has quasi-metallic properties and shows an unusual increase of conductance as the wire length increases; its excellent conductivity holds great promis July 8th, 2022


Luisier wins SNSF Advanced Grant to develop simulation tools for nanoscale devices July 8th, 2022

Chip Technology


Electrically driven single microwire-based single-mode microlaser July 8th, 2022


Photoinduced large polaron transport and dynamics in organic-inorganic hybrid lead halide perovskite with terahertz probes July 8th, 2022


Led by Columbia Engineering, researchers build longest, highly conductive molecular nanowire: The 2.6nm-long single molecule wire has quasi-metallic properties and shows an unusual increase of conductance as the wire length increases; its excellent conductivity holds great promis July 8th, 2022


Photonic synapses with low power consumption and high sensitivity are expected to integrate sensing-memory-preprocessing capabilities July 1st, 2022

Quantum Computing


CEA & Partners Present ‘Powerful Step Towards Industrialization’ Of Linear Si Quantum Dot Arrays Using FDSOI Material at VLSI Symposium: Invited paper reports 3-step characterization chain and resulting methodologies and metrics that accelerate learning, provide data on device pe June 17th, 2022


University of Illinois Chicago joins Brookhaven Lab’s Quantum Center June 10th, 2022


Bumps could smooth quantum investigations: Rice University models show unique properties of 2D materials stressed by contoured substrates June 10th, 2022


A one-stop shop for quantum sensing materials May 27th, 2022

Discoveries


Photoinduced large polaron transport and dynamics in organic-inorganic hybrid lead halide perovskite with terahertz probes July 8th, 2022


Scientists capture a ‘quantum tug’ between neighboring water molecules: Ultrafast electrons shed light on the web of hydrogen bonds that gives water its strange properties, vital for many chemical and biological processes July 8th, 2022


New iron catalyst could – finally! – make hydrogen fuel cells affordable: Study shows the low-cost catalyst can be a viable alternative to platinum that has stymied commercialization of the eco-friendly fuel for decades because it’s so expensive July 8th, 2022


Led by Columbia Engineering, researchers build longest, highly conductive molecular nanowire: The 2.6nm-long single molecule wire has quasi-metallic properties and shows an unusual increase of conductance as the wire length increases; its excellent conductivity holds great promis July 8th, 2022

Announcements


Scientists capture a ‘quantum tug’ between neighboring water molecules: Ultrafast electrons shed light on the web of hydrogen bonds that gives water its strange properties, vital for many chemical and biological processes July 8th, 2022


New iron catalyst could – finally! – make hydrogen fuel cells affordable: Study shows the low-cost catalyst can be a viable alternative to platinum that has stymied commercialization of the eco-friendly fuel for decades because it’s so expensive July 8th, 2022


Led by Columbia Engineering, researchers build longest, highly conductive molecular nanowire: The 2.6nm-long single molecule wire has quasi-metallic properties and shows an unusual increase of conductance as the wire length increases; its excellent conductivity holds great promis July 8th, 2022


Luisier wins SNSF Advanced Grant to develop simulation tools for nanoscale devices July 8th, 2022

Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters


Photoinduced large polaron transport and dynamics in organic-inorganic hybrid lead halide perovskite with terahertz probes July 8th, 2022


New iron catalyst could – finally! – make hydrogen fuel cells affordable: Study shows the low-cost catalyst can be a viable alternative to platinum that has stymied commercialization of the eco-friendly fuel for decades because it’s so expensive July 8th, 2022


Led by Columbia Engineering, researchers build longest, highly conductive molecular nanowire: The 2.6nm-long single molecule wire has quasi-metallic properties and shows an unusual increase of conductance as the wire length increases; its excellent conductivity holds great promis July 8th, 2022


CEA-Leti Barn-Owl Inspired, Object-Localization System Uses Up to ‘5 Orders of Magnitude’ Less Energy than Existing Technology: Paper in Nature Communications Describes Neuromorphic Computing Device With ‘Virtually No Power Consumption’ When Idle, Thanks to On-Chip Non-Volatile M July 8th, 2022

Leave a Reply

Your email address will not be published. Required fields are marked *