Niu Peng-Hao, Zhou Zeng-Rong, Lin Zai-Sheng, Sheng Yu-Bo, Yin Liu-Guo, Long Gui-Lu
State Key Laboratory of Low-dimensional Quantum Physics, Beijing 100084, China; Department of Physics, Tsinghua University, Beijing 100084, China; Collaborative Innovation Center of Quantum Matter, Beijing 100084, China; Beijing Academy of Quantum Information Sciences, Beijing 100193, China.
Beijing National Research Center for Information Science and Technology, Beijing 100084, China; School of Information and Technology, Tsinghua University, Beijing 100084, China.
Sci Bull (Beijing). 2018 Oct 30;63(20):1345-1350. doi: 10.1016/j.scib.2018.09.009. Epub 2018 Sep 15.
Security in communication is vital in modern life. At present, security is realized by an encryption process in cryptography. It is unbelievable if a secure communication is achievable without encryption. In quantum cryptography, there is a unique form of quantum communication, quantum secure direct communication, where secret information is transmitted directly over a quantum channel. Quantum secure direct communication is drastically distinct from our conventional concept of secure communication, because it does not require key distribution, key storage and ciphertext transmission, and eliminates the encryption procedure completely. Hence it avoids in principle all the security loopholes associated with key and ciphertext in traditional secure communications. For practical implementation, defects always exist in real devices and it may downgrade the security. Among the various device imperfections, those with the measurement devices are the most prominent and serious ones. Here we report a measurement-device-independent quantum secure direct communication protocol using Einstein-Podolsky-Rosen pairs. This protocol eradicates the security vulnerabilities associated with the measurement device, and greatly enhances the practical security of quantum secure direct communication. In addition to the security advantage, this protocol has an extended communication distance, and a high communication capacity.
通信安全在现代生活中至关重要。目前,安全是通过密码学中的加密过程来实现的。如果不进行加密就能实现安全通信,那将是令人难以置信的。在量子密码学中,存在一种独特的量子通信形式,即量子安全直接通信,其中秘密信息通过量子信道直接传输。量子安全直接通信与我们传统的安全通信概念截然不同,因为它不需要密钥分发、密钥存储和密文传输,并且完全消除了加密过程。因此,它原则上避免了传统安全通信中与密钥和密文相关的所有安全漏洞。对于实际实现,实际设备中总是存在缺陷,这可能会降低安全性。在各种设备缺陷中,测量设备的缺陷最为突出和严重。在此,我们报告一种使用爱因斯坦 - 波多尔斯基 - 罗森对的与测量设备无关的量子安全直接通信协议。该协议消除了与测量设备相关的安全漏洞,并大大提高了量子安全直接通信的实际安全性。除了安全优势外,该协议还具有扩展的通信距离和高通信容量。