[1] Bennett C H, Brassard G. Quantum cryptography: Public-key distribution and coin tossing[C], 175-179(1984).
[2] Lo H K, Curty M, Qi B. Measurement-device-independent quantum key distribution[J]. Physical Review Letters, 108, 130503(2012).
[3] Wang L, Zhao S M, Gong L Y et al. Free-space measurement-device-independent quantum-key-distribution protocol using decoy states with orbital angular momentum[J]. Chinese Physics B, 24, 120307(2015).
[4] Wang F X, Chen W. High-dimensional quantum key distribution based on orbital angular momentum photons: A review[J]. Chinese Journal of Quantum Electronics, 39, 64-80(2022).
[5] Takeoka M, Guha S, Wilde M M. Fundamental rate-loss tradeoff for optical quantum key distribution[J]. Nature Communications, 5, 5235(2014).
[6] Lucamarini M, Yuan Z L, Dynes J F et al. Overcoming the rate-distance limit of quantum key distribution without quantum repeaters[J]. Nature, 557, 400-403(2018).
[7] Pirandola S, Laurenza R, Ottaviani C et al. Fundamental limits of repeaterless quantum communications[J]. Nature Communications, 8, 15043(2017).
[8] Ma X F, Zeng P, Zhou H Y. Phase-matching quantum key distribution[J]. Physical Review X, 8, 031043(2018).
[9] Wang X B, Yu Z W, Hu X L. Twin-field quantum key distribution with large misalignment error[J]. Physical Review A, 98, 062323(2018).
[10] Teng J, Yin Z Q, Fan-Yuan G J et al. Sending-or-not-sending twin-field quantum key distribution with multiphoton states[J]. Physical Review A, 104, 062441(2021).
[11] Chen G, Wang L, Li W et al. Multiple-pulse phase-matching quantum key distribution[J]. Quantum Information Processing, 19, 416(2020).
[12] Xu H, Yu Z W, Jiang C et al. Sending-or-not-sending twin-field quantum key distribution: Breaking the direct transmission key rate[J]. Physical Review A, 101, 042330(2020).
[13] Zhou Y, Yin Z Q, Wang R Q et al. Twin-field quantum key distribution with partial phase postselection[J]. Physical Review Applied, 18, 054026(2022).
[14] Curty M, Azuma K, Lo H K. Simple security proof of twin-field type quantum key distribution protocol[J]. npj Quantum Information, 5, 64(2019).
[15] Wang W Y, Lo H K. Simple method for asymmetric twin-field quantum key distribution[J]. New Journal of Physics, 22, 013020(2020).
[16] Cui C H, Yin Z Q, Wang R et al. Twin-field quantum key distribution without phase postselection[J]. Physical Review Applied, 11, 034053(2019).
[17] Wang X B, Peng C Z, Zhang J et al. General theory of decoy-state quantum cryptography with source errors[J]. Physical Review A, 77, 042311(2008).
[18] Mao Q P, Wang L, Zhao S M. Decoy-state round-robin differential-phase-shift quantum key distribution with source errors[J]. Quantum Information Processing, 19, 56(2020).
[19] Wang S, Zhang S L, Li H W et al. Decoy-state theory for the heralded single-photon source with intensity fluctuations[J]. Physical Review A, 79, 062309(2009).
[20] Zhou C, Bao W S, Fu X Q. Decoy-state quantum key distribution for the heralded pair coherent state photon source with intensity fluctuations[J]. Science China Information Sciences, 53, 2485-2494(2010).
[21] Jiang C, Yu Z W, Wang X B. Measurement-device-independent quantum key distribution with source state errors in photon number space[J]. Physical Review A, 94, 062323(2016).
[22] Lu F Y, Yin Z Q, Wang R et al. Practical issues of twin-field quantum key distribution[J]. New Journal of Physics, 21, 123030(2019).
[23] Jiang C, Yu Z W, Hu X L et al. Robust twin-field quantum key distribution through sending or not sending[J]. National Science Review, 10, nwac186(2023).
[24] Yu Y, Wang L, Zhao S M et al. Decoy-state phase-matching quantum key distribution with source errors[J]. Optics Express, 29, 2227-2243(2021).
[25] Han L, Yu Y, Lu W H et al. Phase-matching quantum key distribution based on heralded pair-coherent source[J]. Quantum Information Processing, 22, 37(2022).
[26] Duan L M, Lukin M D, Cirac J I et al. Long-distance quantum communication with atomic ensembles and linear optics[J]. Nature, 414, 413-418(2001).
[27] Childress L, Taylor J M, Sørensen A S et al. Fault-tolerant quantum communication based on solid-state photon emitters[J]. Physical Review Letters, 96, 070504(2006).
[28] Azuma K, Takeda H, Koashi M et al. Quantum repeaters and computation by a single module: Remote nondestructive parity measurement[J]. Physical Review A, 85, 062309(2012).
[29] Yin H L, Fu Y, Chen Z B. Practical quantum digital signature[J]. Physical Review A, 93, 032316(2016).
[30] Arrazola J M, Lütkenhaus N. Quantum fingerprinting with coherent states and a constant mean number of photons[J]. Physical Review A, 89, 062305(2014).