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The Fermi-Hubbard model, a fundamental framework for studying strongly correlated phenomena could significantly benefit from quantum simulations when exploring non-trivial settings.
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2015
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2015
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2015
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2017
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Sreraman Muralidharan, Chang-Ling Zou, Linshu Li, Jianming Wen, and Liang Jiang, ‘Overcoming erasure errors with multilevel systems,’
2017
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Alessandro Chiesa, Francesco Petiziol, Emilio Macaluso, Sandro Wimberger, Paolo Santini, and Stefano Carretta, ‘Embedded quantum-error correction and controlled-phase gate for molecular spin qubits,’
2021
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2021
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2022
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2022
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Yunzhe Zheng, Hemant Sharma, and Johannes Borregaard, ‘Entanglement distribution with minimal memory requirements using time-bin photonic qudits,’
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R. K. Naik, N. Leung, S. Chakram, Peter Groszkowski, Y. Lu, N. Earnest, D. C. McKay, Jens Koch, and D. I. Schuster, ‘Random access quantum information processors using multimode circuit quantum electrodynamics,’
2017
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David C. McKay, Christopher J. Wood, Sarah Sheldon, Jerry M. Chow, and Jay M. Gambetta, ‘Efficient z z gates for quantum computing,’
2017
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Leticia Tarruell and Laurent Sanchez-Palencia, ‘Quantum simulation of the Hubbard
2018
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Jun ichi Yoshikawa, Marcel Bergmann, Peter van Loock, Maria Fuwa, Masanori Okada, Kan Takase, Takeshi Toyama, Kenzo Makino, Shuntaro Takeda, and Akira Furusawa, ‘Heralded creation of photonic qudits from parametric down-conversion using linear optics,’
2018
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Ian D. Kivlichan, Jarrod McClean, Nathan Wiebe, Craig Gidney, Alán Aspuru-Guzik, Garnet Kin-Lic Chan, and Ryan Babbush, ‘Quantum simulation of electronic structure with linear depth and connectivity,’
2018
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Adam Smith, M. Kim, Frank Pollmann, and Johannes Knolle, ‘Simulating quantum many-body dynamics on a current digital quantum computer,’
2019
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Hsuan-Hao Lu, Zixuan Hu, Mohammed Saleh Alshaykh, Alexandria Jeanine Moore, Yuchen Wang, Poolad Imany, Andrew Marc Weiner, and Sabre Kais, ‘Quantum phase estimation with time-frequency qudits in a single photon,’
2019
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2022
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2022
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Yulin Chi, Jieshan Huang, Zhanchuan Zhang, Jun Mao, Zinan Zhou, Xiaojiong Chen, Chonghao Zhai, Jueming Bao, Tianxiang Dai, Huihong Yuan, Ming Zhang, Daoxin Dai, Bo Tang, Yan Yang, Zhihua Li, Yunhong Ding, Leif Oxenløwe, Mark Thompson, Jeremy O’Brien, and Jianwei Wang, ‘A programmable qudit-based quantum processor,’
2022
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2022
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Daniel González-Cuadra, Torsten V. Zache, Jose Carrasco, Barbara Kraus, and Peter Zoller, ‘Hardware efficient quantum simulation of non-abelian gauge theories with qudits on Rydberg
2022
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Qi-Ping Su, Yu Zhang, Liang Bin, and Chui-Ping Yang, ‘Hybrid controlled-sum gate with one superconducting qutrit and one cat-state qutrit and application in hybrid entangled state preparation,’
2022
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Sergey Bravyi, Oliver Dial, Jay M. Gambetta, Darío Gil, and Zaira Nazario, ‘The future of quantum computing with superconducting qubits,’
2022
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Laurin E. Fischer, Daniel Miller, Francesco Tacchino, Panagiotis Kl. Barkoutsos, Daniel J. Egger, and Ivano Tavernelli, ‘Ancilla-free implementation of generalized measurements for qubits embedded in a qudit space,’
2022
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Noah Goss, Alexis Morvan, Brian Marinelli, Bradley K Mitchell, Long B Nguyen, Ravi K Naik, Larry Chen, Christian Jünger, John Mark Kreikebaum, David I Santiago, et al. , ‘High-fidelity qutrit entangling gates for superconducting circuits,’
2022
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Daniel González-Cuadra, Torsten V. Zache, Jose Carrasco, Barbara Kraus, and Peter Zoller, ‘Hardware efficient quantum simulation of non-abelian gauge theories with qudits on rydberg platforms,’
2022
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2022
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Youngseok Kim, Andrew Eddins, Sajant Anand, Ken Wei, Ewout Berg, Sami Rosenblatt, Hasan Nayfeh, Yantao Wu, Michael Zaletel, Kristan Temme, and Abhinav Kandala, ‘Evidence for the utility of quantum computing before fault tolerance,’
2023
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2023
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2023
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Laurin E. Fischer, Alessandro Chiesa, Francesco Tacchino, Daniel J. Egger, Stefano Carretta, and Ivano Tavernelli, ‘Universal qudit gate synthesis for transmons,’
2023
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Pei Liu, Ruixia Wang, Jing-Ning Zhang, Yingshan Zhang, Xiaoxia Cai, Huikai Xu, Zhiyuan Li, Jiaxiu Han, Xuegang Li, Guangming Xue, Weiyang Liu, Li You, Yirong Jin, and Haifeng Yu, ‘Performing SU ( d ) \mathrm{SU}(d) operations and rudimentary algorithms in a superconducting transmon qudit for d = 3 d=3 and d = 4 d=4 ,’
2023
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Arian Vezvaee, Evangelia Takou, Paul Hilaire, Matthew F. Doty, and Sophia E. Economou, ‘Avoiding leakage and errors caused by unwanted transitions in lambda systems,’
2023
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D. González-Cuadra, D. Bluvstein, M. Kalinowski, R. Kaubruegger, N. Maskara, P. Naldesi, T. V. Zache, A. M. Kaufman, M. D. Lukin, H. Pichler, B. Vermersch, Jun Ye, and P. Zoller, ‘Fermionic quantum processing with programmable neutral atom arrays,’
2023
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Torsten V. Zache, Daniel González-Cuadra, and Peter Zoller, ‘Fermion-qudit quantum processors for simulating lattice gauge theories with matter,’
2023
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