• Acta Physica Sinica
  • Vol. 68, Issue 3, 030307-1 (2019)
Jian-Peng Dou1、2, Hang Li1、2, Xiao-Ling Pang1、2, Chao-Ni Zhang1、2, Tian-Huai Yang1、2, and Xian-Min Jin1、2、*
Author Affiliations
  • 1State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Physics and Astronomy, Shanghai Jiao Tong University, Shanghai 200240, China
  • 2Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei 230026, China
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    DOI: 10.7498/aps.68.20190039 Cite this Article
    Jian-Peng Dou, Hang Li, Xiao-Ling Pang, Chao-Ni Zhang, Tian-Huai Yang, Xian-Min Jin. Research progress of quantum memory[J]. Acta Physica Sinica, 2019, 68(3): 030307-1 Copy Citation Text show less

    Abstract

    Quantum technologies, for example, quantum communication and quantum computation, promise spectacular quantum enhanced advantages beyond what can be done classically. However, quantum states, as the element of quantum technologies, are very fragile and easily get lost to the environment, and meanwhile, their generation and quantum operations are mostly probabilistic. These problems make it exponentially hard to build long-distance quantum channels for quantum communication and large quantum systems for quantum computing. Quantum memory allows quantum states to be stored and retrieved in a programmable fashion, therefore providing an elegant solution to the probabilistic nature and associated limitation by coordinating asynchronous events. In the past decades, enormous advances in quantum memory have been made by developing various storage protocols and their physical implementations, and the quantum memory has gradually evolved from the initial conceptual demonstration to a nearly practical one. Aiming at being practicable for efficient synchronisation and physical scalability, an ideal quantum memory should meet several key features known as high efficiency, low noise level, large time bandwidth product (lifetime divided by pulse duration) and operating at room temperature. Here, we present the research status and development trends of this field by introducing some typical storage protocols. Among these protocols, a room-temperature broadband quantum memory is the most attractive due to its simplicity and practicability. However, at room temperature, noise becomes dominant and is a bottleneck problem that has impeded the realization of a real room-temperature broadband quantum memory in the last decades. Recently, the noise problem has been solved in two memory protocols, i.e. FORD (far off-resonance Duan-Lukin-Cirac-Zoller) protocol and ORCA (off-resonant cascaded absorption) protocol. In this paper, the working principles, the merits and demerits of various quantum memory protocols are illustrated. Furthermore, the approaches to eliminating noise and the applications of quantum memory are summarized.
    Jian-Peng Dou, Hang Li, Xiao-Ling Pang, Chao-Ni Zhang, Tian-Huai Yang, Xian-Min Jin. Research progress of quantum memory[J]. Acta Physica Sinica, 2019, 68(3): 030307-1
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