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Abstract
To advance the full potential of quantum networks one should be able to distribute quantum resources over long distances at appreciable rates. As a consequence, all components in such networks need to have large multimode capacity to manipulate photonic quantum states. Towards this end, a photonic quantum memory with a large multimode capacity, especially one operating at telecom wavelength, remains an important challenge. Here we optimize the preparation of atomic frequency combs and demonstrate a spectro-temporally multiplexed quantum memory in a 10-m-long cryogenically cooled erbium doped silica fibre. Our multiplexing storage has five spectral channels - each 10 GHz wide with 5 GHz separation - with up to 330 temporal modes in each, thus resulting in a simultaneous storage of 1,650 modes of heralded single photons with a 1000-fold increasing in coincidence detection rate with respect to single mode storage. Our results could pave the way for high speed quantum networks compatible with the infrastructure of fibre optical communication.
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1 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060); Tianfu Jiangri Laboratory, Research Center for Quantum Internet, Chengdu, P. R. China (GRID:grid.54549.39)
2 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060); Southwest Jiaotong University, School of Information Science and Technology, Chengdu, P. R. China (GRID:grid.263901.f) (ISNI:0000 0004 1791 7667)
3 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060)
4 Chinese Academy of Sciences, Shanghai Institute of Microsystem and Information Technology, Shanghai, P. R. China (GRID:grid.9227.e) (ISNI:0000000119573309)
5 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060); Southwest Institute of Technical Physics, Chengdu, P. R. China (GRID:grid.464276.5) (ISNI:0000 0001 0381 3718)
6 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060); University of Science and Technology of China, CAS Key Laboratory of Quantum Information, Hefei, P. R. China (GRID:grid.59053.3a) (ISNI:0000 0001 2167 9639)
7 University of Calgary, Institute for Quantum Science and Technology, and Department of Physics & Astronomy, Calgary, Canada (GRID:grid.22072.35) (ISNI:0000 0004 1936 7697)
8 University of Electronic Science and Technology of China, Institute of Fundamental and Frontier Sciences & School of Optoelectronic Science and Engineering, Chengdu, P. R. China (GRID:grid.54549.39) (ISNI:0000 0004 0369 4060); Tianfu Jiangri Laboratory, Research Center for Quantum Internet, Chengdu, P. R. China (GRID:grid.54549.39); University of Science and Technology of China, CAS Key Laboratory of Quantum Information, Hefei, P. R. China (GRID:grid.59053.3a) (ISNI:0000 0001 2167 9639)