Accès ouvert déclaré
2025
preprint
Quantum computation of molecular geometry via many-body nuclear spin echoes
Chuanwei Zhang, Rodrigo G. Cortiñas, Amir H. Karamlou, Natalie A. Noll, Justin Provazza, Johannes Bausch, S. Shirobokov, Angela White, Martin Claassen, S. H. Kang, Andrew Senior, Nenad Tomašev, J. Gross, K. Lee, Thomas Schuster, W. J. Huggins, Hüseyin Çelik, Alexander T. Greene, Borislav Kozlovskii, Francisco J. H. Heras, Andreas Bengtsson, Alejandro Grajales Dau, I. V. Drozdov, Bicheng Ying, Wendy Livingstone, V. Sivak, Noureldin Yosri, C. Quintana, D. Abanin, Amr E. Abbas, Rajeev Acharya, Laleh Aghababaie Beni, Georg Aigeldinger, Raúl Alcaraz, Salvador Alcaraz, T. I. Andersen, M. Ansmann, Frank Arute, K. Arya, Walt Askew, Nikita Astrakhantsev, Juan Atalaya, B. Ballard, Joseph C. Bardin, H. E. Bates, Majid Karimi, A. Bilmes, Simon Bilodeau, Felix Borjans, A. Bourassa, Jenna Bovaird, Daniel C. Bowers, L. Brill, Peter Brooks, M. Broughton, D. A. Browne, Brett Buchea, B. B. Buckley, T. Burger, Brian Burkett, Jamal Busnaina, N. Bushnell, A. Cabrera, J. Campero, Hong Chang, S. Chen, Z. Chen, Benjamin Chiaro, Liang-Ying Chih, Agnetta Y. Cleland, Barbara B. Cochrane, Maeve Cockrell, J. Cogan, Roberto Collins, P. Conner, H. Cook, W. Courtney, A. L. Crook, Ben Curtin, Sayan Das, Martin Damyanov, Dripto M. Debroy, Luis Lorenzo, Sean Demura, L. Rose, A. Di Paolo, Paul Donohoe, A. Dunsworth, Valerie Ehimhen, Alec Eickbusch, Aviv Moshe Elbag, Lior Ella, Mahmoud Elzouka, Daniel Enríquez, C. Erickson, V. S. Ferreira, M. Barboza‐Flores, Leslie Flores Burgos, Ebrahim Forati, Joseph Ford, A. G. Fowler, Brooks Foxen, Masaya Fukami, Albert Fung, Lenny Fuste, Suhas Ganjam, Gonzalo Cerruela García, Christopher Garrick, Rebeca Gasca, Helge Gehring, Robert Geiger, Élie Genois, William Giang, C. Gidney, D. Gilboa, Jeffrey Goeders, Eileen C. Gonzales, Raja Gosula, Stijn J. de Graaf, Dietrich Graumann, Joel Grebel, Julio Guerrero, José Domingos Guimarães, Taekjip Ha, S. Habegger, Tanner Hadick, Ali Hadjikhani, Matthew P. Harrigan, Sean D. Harrington, Jeanne Hartshorn, Stephen Heslin, P. Heu, Oscar Higgott, Reno Hiltermann, Jeremy Hilton, Hsin‐Yuan Huang, Michael Hucka, Christopher Hudspeth, Ashley Huff, E. Jeffrey, Shaun Jevons, Zhang Jiang, Xin Jin, Chaitanya Joshi, P. Juhas, A. Kabel, Hyunsun Kang, Kyung-In Kang, Robert A. Kaufman, K. Kechedzhi, Tanuj Khattar, Mostafa Khezri, S. Kim, Ronald C. King, Oriel Kiss, P. V. Klimov, Can M. Knaut, Bryce Kobrin, F. Kostritsa, John Mark Kreikebaum, R. Kudo, Ben Kueffler, Ashok Kumar, Vladislav D. Kurilovich, Vitali Kutsko, Nathan Lacroix, D. Landhuis, Tiano Lange-Dei, Brandon W. Langley, Pavel Laptev, K. -M. Lau, Loïck Le Guevel, Julie G. Ledford, J. Lee, B. J. Lester, Wai Sze Leung, Li Li, W. Y. Li, Ming Li, A. T. Lill, Matthew T. Lloyd, A. Locharla, Daniel Lundahl, Aidan Lunt, Sid Madhuk, Asim Kumar Maiti, Alexander Maloney, Salvatore Mandrà, Leigh S. Martin, O. Martin, Eric Mascot, Pabitra Das, Dmitri Maslov, M. Geo Mathews, Cameron Maxfield, Jarrod R. McClean, Matt McEwen, Sanford L. Meeks, K. C. Miao, Reza Molavi, Sophie Molina, Shirin Montazeri, C. Neill, M. Newman, Anthony Nguyen, M. Nguyen, Chia-Hung Ni, M. Y. Niu, Logan Oas, R. Orosco, Kristoffer Ottosson, A. Pagano, Sherman Peek, David R. Peterson, A. Pizzuto, Elías Portolés, R. Potter, Orion Pritchard, Min Qian, Arpit Ranadive, Matthew J. Reagor, R. Resnick, David M. Rhodes, D. Riley, Gareth A. Roberts, Randolph de la Rosa Rodríguez, Emma Ropes, Eliott Rosenberg, Emma Rosenfeld, Dario Rosenstock, E. Rossi, David A. Rower, M. S. Rudolph, Roberto Salazar, Kannan Sankaragomathi, Murat Can Sarihan, Kevin J. Satzinger, M. Schaefer, A. Sebastian Schroeder, Henry F. Schurkus, Aria Shahingohar, M. J. Shearn, Aaron Shorter, Noah Shutty, V. Shvarts, Steven L. Small, W. Clarke Smith, DouglasO. Sobel, R. D. Somma, Barrett Spells, S. Springer, G. Sterling, Jordan Suchard, Aaron Szasz, Alex Sztein, Michael D. Taylor, Jothi Priyanka Thiruraman, Douglas Thor, Doǧan A. Timuçin, Eiji Tomita, A. Torres, Mustafa Mert Torunbalcı, Huy D. Tran, Avani S. Vaishnav, J. E. Ramirez Vargas, Sergey Vdovichev, Guifré Vidal, C. Vollgraff Heidweiller, Meghan Voorhees, Steven Waltman, J. Waltz, S. X. Wang, Bryant Ware, John Watson, Wei Ye, Travis Weidel, T. White, Kam‐Fai Wong, Bryan W. K. Woo, Christopher J. Wood, Madison Woodson, Chao Xing, Zhengjun Yao, P. Yeh, J. Yoo, Erick T. Young, G. Young, Adam Zalcman, Ruiqi Zhang, Y. Zhang, Ningfeng Zhu, Nicholas Zobrist, Zongshu Zou, Gina Bortoli, S. Boixo, Jun Chen, Yu Chen, Michel Devoret, M. Hansen, C. Jones, J. Kelly, Pushmeet Kohli, Alexander N. Korotkov, Erik Lucero, James Manyika, Yossi Matias, A. Megrant, Hartmut Neven, William D. Oliver, Gowri Ramachandran, R. Babbush, V. Smelyanskiy, P. Roushan, Dvir Kafri, R. Sarpong, Dominic W. Berry, Chandrasekhar Ramanathan, X. Mi, Christian Bengs, Ashok Ajoy, Zlatko Minev, N. C. Rubin, Thomas E. O’Brien
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Le résumé fourni par la source
Quantum-information-inspired experiments in nuclear magnetic resonance spectroscopy may yield a pathway towards determining molecular structure and properties that are otherwise challenging to learn. We measure out-of-time-ordered correlators (OTOCs) [1-4] on two organic molecules suspended in a nematic liquid crystal, and investigate the utility of this data in performing structural learning tasks. We use OTOC measurements to augment molecular dynamics models, and to correct for known approximations in the underlying force fields. We demonstrate the utility of OTOCs in these models by estimating the mean ortho-meta H-H distance of toluene and the mean dihedral angle of 3',5'-dimethylbiphenyl, achieving similar accuracy and precision to independent spectroscopic measurements of both quantities. To ameliorate the apparent exponential classical cost of interpreting the above OTOC data, we simulate the molecular OTOCs on a Willow superconducting quantum processor, using AlphaEvolve-optimized [5] quantum circuits and arbitrary-angle fermionic simulation gates. We implement novel zero-noise extrapolation techniques based on the Pauli pathing model of operator dynamics [6], to repeat the learning experiments with root-mean-square error $0.05$ over all circuits used. Our work highlights a computational protocol to interpret many-body echoes from nuclear magnetic systems using low resource quantum computation.
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Les sujets associés
Quantum many-body systemsAdvanced NMR Techniques and ApplicationsQuantum Computing Algorithms and Architecture