中文
DIVISION OF FUNDAMENTAL PHYSICS

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Jingjing Niu

niujj@iqasz.cn

Education

2013-2018 Ph.D. in Condensed Matter Physics, Peking University

2009-2013 Bachelor's Degree in Materials Physics, Lanzhou University

Experience

2023-Present Junoir Researcher, Hefei National Laboratory

2023-Present Associate Researcher, Shenzhen International Quantum Academy

2020-2023 Assistant Researcher, Southern University of Science and Technology

2018-2020 Postdoctoral Researcher, Southern University of Science and Technology

Overview of Academic Research

Dr. Niu’s research focuses on superconducting quantum computing and quantum simulation, with an emphasis on developing scalable qubit architectures, quantum chip interconnects, and distributed quantum processing techniques. Her recent efforts have addressed key challenges in realizing low-loss, high-fidelity inter-chip communication, contributing to the development of modular and scalable quantum systems. These contributions have drawn recognition within the scientific community, including a Nature highlight titled “Quest for a cable brings a quantum network to life,” which underscored the significance of her work in advancing practical quantum networking technologies.

Representative Publications

1.J. Niu, L. Zhang, Y. Liu, J. Qiu, W. Huang, J. Huang, Jia, J. Liu, Z. Tao, W. Wei, Y. Zhou, W. Zou, Y. Chen, Deng, X. Deng, C. Hu, L. Hu, J. Li, D. Tan, Y. Xu, F. Yan, T. Yan, S. Liu, Y. Zhong, A. N. Cleland, and D. Yu, “Low-loss interconnects for modular superconducting quantum processors,” Nature Electronics, 6, 235–241 (2023).

2.J. Zhang, W. Huang, J. Chu, J. Qiu, X. Sun, Z. Tao, J. Zhang, L. Zhang, Y. Zhou, Y. Chen, Y. Liu, S. Liu, Y. Zhong, J.-J. Miao, J. Niu, and D. Yu, “Synthetic Multidimensional Aharonov-Bohm Cages in Fock State Lattices”, Phys. Rev. Lett., 134, 070601 (2025)

3.J. Niu†*, Y. Li†, L. Zhang†, J. Zhang, J. Chu, J. Huang,W. Huang,  L. Nie,  J. Qiu,  X. Sun,  Z. Tao, W. Wei, J. Zhang,  Y. Zhou,  Y. Chen,  L. Hu,  Y. Liu, S. Liu, Y. Zhong, D. Lu, and D. Yu, “Demonstrating path-independent anyonic braiding on a modular superconducting quantum processor,” Phys. Rev. Lett., 132, 020601 (2024).

4.J. Qiu†, Z. Zhang†, Z. Wang, L. Zhang, Y. Zhou, X. Sun, J. Zhang, X. Linpeng, S. Liu, J. Niu*, Y. Zhong*, and D. Yu*, “A thermal-noise-resilient microwave quantum net- work traversing 4 K”, arXiv:2503.01133 (2025) [quant-ph].

5.J. Zhang†, L. Wang†, Y.-J. Hai†, J. Zhang†, J. Chu, J. Jiang, W. Huang, Y. Liang, J. Qiu, X. Sun, Z.Tao, L. Zhang, Y. Zhou, Y. Chen, W. Guo, X. Linpeng, S. Liu, W. Ren, J. Niu*, Y. Zhong*, H. Yuan*, D. Yu, “Distributed multi-parameter quantum metrology with a superconducting quantum network”, arXiv:2412.18398 (2024).

6.Y. Liang†, W. Huang†, L. Zhang, Z. Tao, K. Tang, J. Chu, J. Qiu, X. Sun, Y. Zhou, J. Zhang, J. Zhang, W. Guo, Y. Liu, Y. Chen, S.  Liu, Y.  Zhong*, J. Niu*, and D. Yu, “Floquet engineering of anisotropic transverse interactions in superconducting qubits”, arXiv:2410.10208 (2024) [quant-ph].

7.J. J. Niu†, T. X. Yan†, Y. X. Zhou†, Z. Y. Tao, X. L. Li, W.Y. Liu, L. B. Zhang, S. Liu*, Z. B. Yan*, Y. Z. Chen*, D. P. Yu, “Simulation of Higher-Order Topological phases and Related Topological Phase transitions in a Superconducting Qubit,” Science Bulletin 66,1168–1175 (2021).

8.J. J. Niu†, B. J. Liu†, Y. X. Zhou†, T. X. Yan, W. H. Huang, W. Y. Liu, L. B. Zhang, H. Jia, S. Liu*, M.-H. Yung*, Y. Z. Chen*, D. P. Yu, “Quantum Control via Stimulated Raman User-defined Passage”, Phys. Rev. Applied 17, 034056 (2022).

9.Z. Tao†, W. Huang†, J. Niu†, L. Zhang, Y. Ke, X. Gu, L. Lin, J. Qiu, X. Sun, X. Yang, et al., Front. Phys. 20, 033202 (2025).

10.J. J. Niu†, W. J. Zhang†, Z. L. Li†, W. J. Zhang, S. L. Shu, P. Gao, D. P. Yu, X. S. Wu*, “V5S8: a kondo lattice based on intercalation of van der waals layered transition metal dichalcogenide,” Chin. Phys. B, 29,097104 (2020).