Award Abstract # 2016245
QLCI-CI: NSF Quantum Leap Challenge Institute for Present and Future Quantum Computing

NSF Org: OSI
Office of Strategic Initiatives (OSI)
Recipient: REGENTS OF THE UNIVERSITY OF CALIFORNIA, THE
Initial Amendment Date: July 20, 2020
Latest Amendment Date: April 26, 2024
Award Number: 2016245
Award Instrument: Cooperative Agreement
Program Manager: Alexander Cronin
acronin@nsf.gov
 (703)292-5302
OSI
 Office of Strategic Initiatives (OSI)
MPS
 Direct For Mathematical & Physical Scien
Start Date: September 1, 2020
End Date: August 31, 2025 (Estimated)
Total Intended Award Amount: $24,936,988.00
Total Awarded Amount to Date: $23,950,988.00
Funds Obligated to Date: FY 2020 = $7,700,000.00
FY 2021 = $4,236,988.00

FY 2022 = $12,000,000.00

FY 2024 = $14,000.00
History of Investigator:
  • Hartmut Haeffner (Principal Investigator)
    hhaeffner@berkeley.edu
  • Umesh Vazirani (Co-Principal Investigator)
  • K. Birgitta Whaley (Co-Principal Investigator)
  • Dan Stamper-Kurn (Co-Principal Investigator)
  • Eric Hudson (Co-Principal Investigator)
  • Dan Stamper-Kurn (Former Principal Investigator)
  • Hartmut Haeffner (Former Co-Principal Investigator)
Recipient Sponsored Research Office: University of California-Berkeley
1608 4TH ST STE 201
BERKELEY
CA  US  94710-1749
(510)643-3891
Sponsor Congressional District: 12
Primary Place of Performance: University of California-Berkeley
301D Leconte Hall
Berkeley
CA  US  94720-3860
Primary Place of Performance
Congressional District:
12
Unique Entity Identifier (UEI): GS3YEVSS12N6
Parent UEI:
NSF Program(s): QL-The Quantum Leap: Leading t,
OFFICE OF MULTIDISCIPLINARY AC
Primary Program Source: 01002223DB NSF RESEARCH & RELATED ACTIVIT
01002425DB NSF RESEARCH & RELATED ACTIVIT

01002021DB NSF RESEARCH & RELATED ACTIVIT

01002122DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 057Z, 7203, 9251
Program Element Code(s): 105Y00, 125300
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.049

ABSTRACT

The classical computers in our laptops, smart phones, and cars, together with those in large supercomputing facilities, have completely revolutionized modern life. The quantum computer, which harnesses the quantum-mechanical behavior of physical systems to gain a revolutionary advantage over existing computer technologies, will have greater computational power than any conceivable classical computer and an inestimable impact, not only on all manners of scientific research, but also in every type of human activity. Motivated by this potential impact, several large-scale efforts have been pursued by industry, national laboratories, and others to bring about the quantum computer. The Quantum Leap Challenge Institute for Present and Future Quantum Computation engages the academic community to support these large-scale efforts by addressing fundamental obstacles that all of them face. Additionally, the Institute provides education and workforce development at several levels -- a Master's program, online courses for everybody ranging from high-school students to trained professionals, programs to boost the involvement of computer science and mathematics faculties in quantum computing, and other activities -- in order to build the quantum-smart workforce that the Nation will need. The Institute has a large footprint within several campuses of the University of California and will leverage their breadth and diversity to bring a large and diverse pool of talent into quantum information science and technology.

The overall goal of the Quantum Leap Challenge Institute for Present and Future Quantum Computation is to help bring about the quantum computer. The realization of large-scale quantum computation is the central scientific challenge of our times. Several fundamental obstacles stand in the way of the practical quantum computer, including the development of algorithms that utilize quantum computers to reduce the complexity of generic computational tasks, the use of the smaller-scale quantum technologies available at present and in the near future for specialized computational tasks, and the scaling-up of quantum technologies without degrading the high fidelity and modularity needed for large-scale quantum computing. To address these challenges, the Institute mobilizes an interdisciplinary team of scientists and engineers that includes experts in physics, computer science, chemistry, mathematics, electrical engineering, and materials research. Theoretical research on quantum algorithms for present and future quantum computing technologies will be motivated and tested by the experimental development of atomic, molecular, and optics-based quantum computing testbeds. The Institute will also promote the development of quantum science and technology nationwide through extensive education and workforce development programs; research coordination and partnership activities that draw together stakeholders from academia, industry, government laboratories, and other consortia; and influential engagement with the computer and mathematical sciences communities through the Simons Institute for the Theory of Computing and the Institute for Pure and Applied Mathematics.

This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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(Showing: 1 - 10 of 60)
Cotler, Jordan S. and Mark, Daniel K. and Huang, Hsin-Yuan and Hernández, Felipe and Choi, Joonhee and Shaw, Adam L. and Endres, Manuel and Choi, Soonwon "Emergent Quantum State Designs from Individual Many-Body Wave Functions" PRX quantum , 2023 Citation Details
Kahanamoku-Meyer, Gregory D. and Choi, Soonwon and Vazirani, Umesh V. and Yao, Norman Y. "Classically verifiable quantum advantage from a computational Bell test" Nature Physics , v.18 , 2022 https://doi.org/10.1038/s41567-022-01643-7 Citation Details
Peng, Pai and Ye, Bingtian and Yao, Norman Y. and Cappellaro, Paola "Exploiting disorder to probe spin and energy hydrodynamics" Nature Physics , 2023 https://doi.org/10.1038/s41567-023-02024-4 Citation Details
Liu, Qipeng "Non-Uniformity and Quantum Advice in the Quantum Random Oracle Model." Annual International Conference on the Theory and Applications of Cryptographic Techniques , 2023 Citation Details
Napp, John C. and La Placa, Rolando L. and Dalzell, Alexander M. and Brandão, Fernando G.?S.?L. and Harrow, Aram W. "Efficient Classical Simulation of Random Shallow 2D Quantum Circuits" Physical Review X , v.12 , 2022 https://doi.org/10.1103/PhysRevX.12.021021 Citation Details
An, Dong and Fang, Di and Lin, Lin "Parallel transport dynamics for mixed quantum states with applications to time-dependent density functional theory" Journal of Computational Physics , v.451 , 2022 https://doi.org/10.1016/j.jcp.2021.110850 Citation Details
Bouland, Adam and Fefferman, Bill and Landau, Zeph and Liu, Yunchao "Noise and the Frontier of Quantum Supremacy" 2021 IEEE 62nd Annual Symposium on Foundations of Computer Science (FOCS) , 2022 https://doi.org/10.1109/FOCS52979.2021.00127 Citation Details
Sutherland, R. Tyler and Yu, Qian and Beck, Kristin M. and Häffner, Hartmut "One- and two-qubit gate infidelities due to motional errors in trapped ions and electrons" Physical Review A , v.105 , 2022 https://doi.org/10.1103/PhysRevA.105.022437 Citation Details
Yu, Qian and Alonso, Alberto M. and Caminiti, Jackie and Beck, Kristin M. and Sutherland, R. Tyler and Leibfried, Dietrich and Rodriguez, Kayla J. and Dhital, Madhav and Hemmerling, Boerge and Häffner, Hartmut "Feasibility study of quantum computing using trapped electrons" Physical Review A , v.105 , 2022 https://doi.org/10.1103/PhysRevA.105.022420 Citation Details
Liu, Qipeng "Depth-Bounded Quantum Cryptography with Applications to One-Time Memory and More." 14th Innovations in Theoretical Computer Science Conference (ITCS 2023) , 2023 Citation Details
Liu, Jiahui and Liu, Qipeng and Qian, Luowen and Zhandry, Mark "Collusion Resistant Copy-Protection for Watermarkable Functionalities" Theory of Cryptography Conference , 2022 Citation Details
(Showing: 1 - 10 of 60)

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