Article(id=1276203003233309402, tenantId=1146029695717560320, journalId=1146031591421210625, issueId=1276202956391313894, articleNumber=null, orderNo=null, doi=10.3981/j.issn.1000-7857.2025.04.00141, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=research-article, receivedDate=1745769600000, receivedDateStr=2025-04-28, revisedDate=1764691200000, revisedDateStr=2025-12-03, acceptedDate=null, acceptedDateStr=null, onlineDate=1782200106676, onlineDateStr=2026-06-23, pubDate=1781280000000, pubDateStr=2026-06-13, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1782200106676, onlineIssueDateStr=2026-06-23, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1782200106676, creator=13701087609, updateTime=1782200106676, updator=13701087609, issue=Issue{id=1276202956391313894, tenantId=1146029695717560320, journalId=1146031591421210625, year='2026', volume='44', issue='11', pageStart='1', pageEnd='136', issueExtLink='null', onlineDate='null', pubDate='null', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=1, specialIssue=null, createTime=1782200095507, creator=13701087609, updateTime=1782200147766, updator=13701087609, preIssue=null, nextIssue=null, ext={EN=IssueExt(id=1276203176344810276, tenantId=1146029695717560320, journalId=1146031591421210625, issueId=1276202956391313894, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1276203176344810277, tenantId=1146029695717560320, journalId=1146031591421210625, issueId=1276202956391313894, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null}, startPage=87, endPage=95, ext={EN=ArticleExt(id=1276203003682099932, articleId=1276203003233309402, tenantId=1146029695717560320, journalId=1146031591421210625, language=EN, title=High−speed multi−carrier continuous variable quantum key distribution within metropolitan areas, columnId=1150494644690366681, journalTitle=Science & Technology Review, columnName=Papers, runingTitle=null, highlight=null, articleAbstract=

Continuous−variable quantum key distribution (CV−QKD) technology has emerged as a pivotal direction in quantum secure communication due to its inherent compatibility with classical optical communication systems and high key rates within metropolitan areas. However, the secret key rates of existing CV−QKD systems remain insufficient to meet the practical requirements of one−time pad encryption within metropolitan areas. This work innovatively integrates orthogonal frequency−division multiplexing (OFDM) technology into CV−QKD systems. We experimentally demonstrated, for the first time, a multi−carrier CV−QKD system operating at a 10 GHz repetition rate. Moreover, this experimental system respectively achieves secret key rates of 1819.32, 1078.48, 374.19, 112.96, and 34.63 Mbps over transmission distances of 5, 10, 25, 50, and 75 km by developing a high−precision dual−stage phase noise compensation algorithm, establishing an excess noise theoretical model, and designing a high−throughput data post−processing scheme. Notably, our work realizes the first instance of Gbps−level secret key rates within 10 km and 100 Mbps−level secret key rates within 50 km for metropolitan−area CV−QKD. Compared to traditional single−carrier CV−QKD system with 10 GHz repetition rate under identical experimental conditions, the multi−carrier key rate gains at different transmission distances can respectively reach 1.09@5 km, 1.10@10 km, 1.13@25 km, 1.54@50 km, and 5.55@75 km. These results confirm that the multi−carrier CV−QKD system scheme can significantly enhance quantum key distribution performance, providing an effective solution for future broadband and long−distance quantum secure communication.

, correspAuthors=Bingjie XU, authorNote=null, correspAuthorsNote=null, copyrightStatement=All rights reserved. Unauthorized reproduction is prohibited., copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, authorCompany=null, fund=null, authors=null, authorsList=Heng WANG, Yan PAN, Ting YE, Yun SHAO, Li MA, Mingze WU, Yaodi PI, Ao SUN, Yang LI, Wei HUANG, Yichen ZHANG, Bingjie XU), CN=ArticleExt(id=1276203006752330472, articleId=1276203003233309402, tenantId=1146029695717560320, journalId=1146031591421210625, language=CN, title=城域高速多载波连续变量量子密钥分发系统, columnId=1146540929516700224, journalTitle=科技导报, columnName=研究论文, runingTitle=null, highlight=null, articleAbstract=

连续变量量子密钥分发(continuous variable quantum key distribution,CV−QKD)技术因兼具与传统光通信兼容性好和城域范围内码率高等优势被广泛研究,但其安全码率仍不足以支撑城域“一次一密”实际应用需求。本研究将正交频分复用技术融合于CV−QKD技术,首次实验展示了10 GHz重复频率的多载波CV−QKD系统,并通过设计高精确的双级相位噪声补偿算法、建立过噪声理论模型和设计高吞吐量的数据后处理方案,在5、10、25、50、75 km光纤信道的安全码率分别可达1819.32、1078.48、374.19、112.96、34.63 Mbps,首次实现10 km城域距离内Gbps量级和50 km城域距离内100 Mbps量级的安全码率。最后,与同等实验条件下10 GHz重复频率的单载波CV−QKD系统安全码率相比,不同传输距离下多载波系统安全码率增益分别可达1.09@5 km、1.10@10 km、1.13@25 km、1.54@50 km和5.55@75 km,表明多载波CV−QKD系统方案能够显著提升量子密钥分发性能,可为未来宽带、长距离量子保密通信提供有效解决方案。

, correspAuthors=徐兵杰, authorNote=null, correspAuthorsNote=
徐兵杰(通信作者),研究员,研究方向为量子密码技术、量子保密通信技术,电子信箱:
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王恒,正高级工程师,研究方向为量子保密通信技术,电子信箱:

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王恒,正高级工程师,研究方向为量子保密通信技术,电子信箱:

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王恒,正高级工程师,研究方向为量子保密通信技术,电子信箱:

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传输距离/
km
SC1SC2SC3SC4SC5
β1FER1VA(1)β2FER2VA(2)β3FER3VA (3)β4FER4VA(4)β5FER5VA(5)
50.83890.00193.50.83890.00193.30.00250.83913.50.83920.00283.70.83910.00253.7
100.83960.00484.20.83960.00484.10.83990.00644.20.83990.00644.50.83990.00644.5
250.90540.01364.10.90540.01364.00.90610.01904.10.90620.02004.40.90630.02104.4
500.92960.02093.80.92990.02343.60.93010.02523.80.93110.03624.10.93050.02924.1
750.92190.09744.10.92000.07073.90.92240.10564.10.92260.10904.40.92270.11084.4
), ArticleFig(id=1276203024792032068, tenantId=1146029695717560320, journalId=1146031591421210625, articleId=1276203003233309402, language=CN, label=表1, caption=

不同传输距离下5个子载波的调制方差VA、协调效率β和误帧率FER全局优化结果

, figureFileSmall=null, figureFileBig=null, tableContent=
传输距离/
km
SC1SC2SC3SC4SC5
β1FER1VA(1)β2FER2VA(2)β3FER3VA (3)β4FER4VA(4)β5FER5VA(5)
50.83890.00193.50.83890.00193.30.00250.83913.50.83920.00283.70.83910.00253.7
100.83960.00484.20.83960.00484.10.83990.00644.20.83990.00644.50.83990.00644.5
250.90540.01364.10.90540.01364.00.90610.01904.10.90620.02004.40.90630.02104.4
500.92960.02093.80.92990.02343.60.93010.02523.80.93110.03624.10.93050.02924.1
750.92190.09744.10.92000.07073.90.92240.10564.10.92260.10904.40.92270.11084.4
), ArticleFig(id=1276203024859140933, tenantId=1146029695717560320, journalId=1146031591421210625, articleId=1276203003233309402, language=EN, label=null, caption=null, figureFileSmall=null, figureFileBig=null, tableContent=
传输距离/kmSC1
安全码率/Mbps
SC2
安全码率/Mbps
SC3
安全码率/Mbps
SC4
安全码率/Mbps
SC5
安全码率/Mbps
多载波系统
安全码率/Mbps
5462.37396.86319.36320.18320.551819.32
10272.51246.16190.38186.63182.801078.48
2593.4594.9464.0661.1160.63374.19
5027.9224.8523.0616.8820.25112.96
757.868.366.276.405.7434.63
), ArticleFig(id=1276203024922055494, tenantId=1146029695717560320, journalId=1146031591421210625, articleId=1276203003233309402, language=CN, label=表2, caption=

不同传输距离下测量得到的渐近安全码率

, figureFileSmall=null, figureFileBig=null, tableContent=
传输距离/kmSC1
安全码率/Mbps
SC2
安全码率/Mbps
SC3
安全码率/Mbps
SC4
安全码率/Mbps
SC5
安全码率/Mbps
多载波系统
安全码率/Mbps
5462.37396.86319.36320.18320.551819.32
10272.51246.16190.38186.63182.801078.48
2593.4594.9464.0661.1160.63374.19
5027.9224.8523.0616.8820.25112.96
757.868.366.276.405.7434.63
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城域高速多载波连续变量量子密钥分发系统
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王恒 1 , 盘艳 1 , 叶挺 1 , 邵云 1 , 马荔 1 , 吴明泽 2 , 皮峣迪 1 , 孙奥 1 , 李扬 1 , 黄伟 1 , 张一辰 2 , 徐兵杰 1, *
科技导报 | 研究论文 2026,44(11): 87-95
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科技导报 | 研究论文 2026, 44(11): 87-95
城域高速多载波连续变量量子密钥分发系统
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王恒1 , 盘艳1, 叶挺1, 邵云1, 马荔1, 吴明泽2, 皮峣迪1, 孙奥1, 李扬1, 黄伟1, 张一辰2, 徐兵杰1, *
作者信息
  • 1西南通信研究所保密通信全国重点实验室,成都 610041
  • 2北京邮电大学信息光子学与光通信全国重点实验室,北京 100876
  • 王恒,正高级工程师,研究方向为量子保密通信技术,电子信箱:

通讯作者:

徐兵杰(通信作者),研究员,研究方向为量子密码技术、量子保密通信技术,电子信箱:
High−speed multi−carrier continuous variable quantum key distribution within metropolitan areas
Heng WANG1 , Yan PAN1, Ting YE1, Yun SHAO1, Li MA1, Mingze WU2, Yaodi PI1, Ao SUN1, Yang LI1, Wei HUANG1, Yichen ZHANG2, Bingjie XU1, *
Affiliations
  • 1National Key Laboratory of Security Communication, Institute of Southwestern Communication, Chengdu 610041, China
  • 2State Key Laboratory of Information Photonics and Optical Communications, School of Electronic Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China
出版时间: 2026-06-13 doi: 10.3981/j.issn.1000-7857.2025.04.00141
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连续变量量子密钥分发(continuous variable quantum key distribution,CV−QKD)技术因兼具与传统光通信兼容性好和城域范围内码率高等优势被广泛研究,但其安全码率仍不足以支撑城域“一次一密”实际应用需求。本研究将正交频分复用技术融合于CV−QKD技术,首次实验展示了10 GHz重复频率的多载波CV−QKD系统,并通过设计高精确的双级相位噪声补偿算法、建立过噪声理论模型和设计高吞吐量的数据后处理方案,在5、10、25、50、75 km光纤信道的安全码率分别可达1819.32、1078.48、374.19、112.96、34.63 Mbps,首次实现10 km城域距离内Gbps量级和50 km城域距离内100 Mbps量级的安全码率。最后,与同等实验条件下10 GHz重复频率的单载波CV−QKD系统安全码率相比,不同传输距离下多载波系统安全码率增益分别可达1.09@5 km、1.10@10 km、1.13@25 km、1.54@50 km和5.55@75 km,表明多载波CV−QKD系统方案能够显著提升量子密钥分发性能,可为未来宽带、长距离量子保密通信提供有效解决方案。

连续变量量子密钥分发  /  正交频分复用  /  多载波技术  /  安全码率  /  过噪声

Continuous−variable quantum key distribution (CV−QKD) technology has emerged as a pivotal direction in quantum secure communication due to its inherent compatibility with classical optical communication systems and high key rates within metropolitan areas. However, the secret key rates of existing CV−QKD systems remain insufficient to meet the practical requirements of one−time pad encryption within metropolitan areas. This work innovatively integrates orthogonal frequency−division multiplexing (OFDM) technology into CV−QKD systems. We experimentally demonstrated, for the first time, a multi−carrier CV−QKD system operating at a 10 GHz repetition rate. Moreover, this experimental system respectively achieves secret key rates of 1819.32, 1078.48, 374.19, 112.96, and 34.63 Mbps over transmission distances of 5, 10, 25, 50, and 75 km by developing a high−precision dual−stage phase noise compensation algorithm, establishing an excess noise theoretical model, and designing a high−throughput data post−processing scheme. Notably, our work realizes the first instance of Gbps−level secret key rates within 10 km and 100 Mbps−level secret key rates within 50 km for metropolitan−area CV−QKD. Compared to traditional single−carrier CV−QKD system with 10 GHz repetition rate under identical experimental conditions, the multi−carrier key rate gains at different transmission distances can respectively reach 1.09@5 km, 1.10@10 km, 1.13@25 km, 1.54@50 km, and 5.55@75 km. These results confirm that the multi−carrier CV−QKD system scheme can significantly enhance quantum key distribution performance, providing an effective solution for future broadband and long−distance quantum secure communication.

continuous−variable quantum key distribution  /  orthogonal frequency−division multiplexing  /  multi−carrier technology  /  secret key rate  /  excess noise
王恒, 盘艳, 叶挺, 邵云, 马荔, 吴明泽, 皮峣迪, 孙奥, 李扬, 黄伟, 张一辰, 徐兵杰. 城域高速多载波连续变量量子密钥分发系统. 科技导报, 2026 , 44 (11) : 87 -95 . DOI: 10.3981/j.issn.1000-7857.2025.04.00141
Heng WANG, Yan PAN, Ting YE, Yun SHAO, Li MA, Mingze WU, Yaodi PI, Ao SUN, Yang LI, Wei HUANG, Yichen ZHANG, Bingjie XU. High−speed multi−carrier continuous variable quantum key distribution within metropolitan areas[J]. Science & Technology Review, 2026 , 44 (11) : 87 -95 . DOI: 10.3981/j.issn.1000-7857.2025.04.00141
近20年来,量子信息技术的迅猛发展极有可能在密码攻防领域引发革命性变革,尤其是实用化通用量子计算机的突破,将对传统密码体系构成严重威胁,促使全球范围内加速研发量子保密通信技术以应对这一挑战。在这一背景下,量子密钥分发(quantum key distribution,QKD)作为目前最成熟且应用最广泛的量子通信技术,凭借其基于量子物理基本原理的信息论安全性,结合“一次一密”加密技术,成为保障“后量子”时代信息安全的核心手段之一[13]。经过40余年发展,QKD技术已从基础研究逐步走向实际应用,并形成了离散变量(discrete variable,DV)和连续变量(continuous variable,CV)2大技术体系。其中,CV−QKD通过将量子密钥信息编码在光场正则分量上,并利用零/外差相干探测技术解码信息,具有与经典相干光通信系统兼容、中短距离密钥速率高、器件成熟、易集成化等显著优势[46]。这些特点使其在量子城域/接入网等高速应用场景中展现出广阔的应用前景,成为推动量子保密通信技术实用化的重要方向。
目前主流的CV−QKD系统主要依靠单个光载波进行量子密钥分发,为此提升CV−QKD系统安全码率和传输距离的主要技术途径是提升系统重复频率和抑制系统过噪声[712]。但随着CV−QKD系统对安全传输性能需求的急剧增长,系统重复频率的提升和过噪声的抑制面临严峻的技术挑战。一方面,随着CV−QKD系统重复频率的提升,宽带量子态在光电调控时将引入大量的量子态制备、传输和探测噪声,特别是宽带量子态在长距离传输时引入的累积色散噪声,严重限制宽带CV−QKD系统的传输距离[1315]。另一方面,宽带CV−QKD系统的量子态传输速率高且信噪比极低,导致高速量子密钥的数字信号处理精度和数据后处理纠错效率、速率不足,难以满足高速安全码率实时输出的需求[1619]。为解决上述问题,国内外已逐步开展了多载波CV−QKD技术方案研究,将高速单载波QKD系统转换为多路低速并行多载波QKD系统,以增强光纤信道色散效应对抗能力和降低数据处理能力需求,显著提升CV−QKD系统的传输距离和安全码率。当前,多载波CV−QKD方案大多采用多套收发装置,并利用波分复用技术实现多路高速量子密钥分发,以成倍增加CV−QKD系统的安全传输性能[20]。但该方案部署复杂、研制成本高,难以满足高速量子保密通信系统实用化需求。
正交频分复用(orthogonal frequency division multiplexing,OFDM)技术已广泛应用于相干光通信系统,其采用一套收发装置即可实现多路正交频分复用光信号并行传输,能够有效提升系统的频谱利用率且具有高鲁棒的光纤色散对抗能力[2122]。因此,本研究将OFDM技术和CV−QKD技术相融合,首次实验展示了10 GHz重复频率的多载波CV−QKD系统。具体为,在传统单载波CV−QKD协议的基础上,系统设计了基于OFDM的多载波CV−QKD协议,构建出多载波CV−QKD安全码率评估理论模型。同时,实验展示了子载波数N=5的多载波CV−QKD系统,并通过设计出双级相位噪声补偿算法和理论分析多载波CV−QKD系统过噪声,实现了一个超低过噪声的多载波CV−QKD系统。此外,本研究采用基于多个图形处理器(graphics processinga unit,GPU)的并行处理方法,实现了吞吐量可达1.6 Gbps的数据后处理方案。最终,提出的基于OFDM的多载波CV−QKD系统在渐近条件下可实现1819.32 Mbps@5 km、1078.48 Mbps@10 km、374.19 Mbps@25 km、112.96 Mbps@50 km和34.63 Mbps@75 km的安全码率,首次在城域范围内实现了10 km传输距离内Gbps量级和50 km传输距离内100 Mbps量级的安全码率。更为有趣的是,相比于同等实验条件下10 GHz重复频率单载波CV−QKD系统的安全码率,不同传输距离下的多载波系统安全码率增益分别可达1.09@5 km、1.10@10 km、1.13@25 km、1.54@50 km和5.55@75 km,表明提出的多载波CV−QKD方案在无须增加额外硬件装置条件下最高能提升4倍的量子密钥分发速率。
本研究提出的多载波CV−QKD协议是在传统CV−QKD协议基础上,通过深度融合OFDM技术,在光频域上实现多路量子正交子载波的并行传输,有效增强宽带量子态在长距离传输时的光纤色散对抗能力,解决宽带CV−QKD系统安全传输性能提升受限的难题。所设计的多载波CV−QKD协议具体流程如下。
1) 多载波量子态制备:Alice在数字域完成N组独立、多路量子随机数列任意离散/高斯调制分布映射和OFDM处理,表示为
$ S\left(t\right)=\sum\limits_{k=1}^N\left[I_k\left(t\right)+\mathrm{j}Q_k\left(t\right)\mathrm{e}^{\mathrm{j}2\text{π}f_kt}\right] $
式中,Ikt)和Qkt)为第k个子载波的2个正交分量,fk为相邻正交子载波的频率间隔,N为子载波数,t为时间。随后,结合IQ调制将光载波调制为N路量子正交子载波,最后将N路并行传输的量子正交子载波通过光纤信道发送给Bob端。
2) 多载波量子态测量:Bob将接收到的N路量子正交子载波进行外差相干探测,然后将探测结果进行N路量子正交子载波的多效应量子密钥数字解调,得到测量结果$ \vec y = \left\{ {{y_k}|k = 1,2,...,N} \right\} $),yk为Bob端第k个子载波的测量结果。
3) 数据后处理:Bob端将测量结果中的N路子载波的初始量子密钥分别进行参数估计、数据协商、译码纠错和私钥放大获得N路量子密钥。最终多载波CV−QKD系统在渐近条件下的安全码率可表示为
$ R = \frac{{{f_{{\mathrm{rep}}}}}}{N}\left[ {\sum\limits_{k = 1}^N {R\left( k \right)} } \right] $
$\begin{split} R\left( k \right) = & \left( {1 - {a_k}} \right)\left( {1 - FE{R_k}} \right){\beta _k}I\left[ {A\left( k \right):B\left( k \right)} \right] -\\ & \chi \left[ {B\left( k \right):E\left( k \right)} \right] \end{split} $
式中,frep为多载波CV−QKD系统重复频率,Rk)为第k个子载波的安全码率,βk为第k个子载波的协商效率,akFERk分别为第k个子载波的训练序列比例和误帧率。I[Ak):Bk)]为第k个子载波Alice和Bob之间的香农互信息,表示为[2324]
$ I\left[A\left(k\right):B\left(k\right)\right]=\frac{1}{2}log_2\frac{V\left(k\right)+\chi\mathrm{_{tot}}\left(k\right)}{1+\chi\mathrm{_{tot}}\left(k\right)} $
式中,Vk)=VAk)+1,VAk)为第k个子载波的调制方差。χtotk)表示第k个子载波的整体信道噪声,可表示为χtotk)=χlinek)+χhetk)/Tk,而信道噪声χlinek)=1/Tk−1+εk和探测端噪声χhetk)=[(2−ηk)+2υel−k]/ηk,其中Tkεkηkυel−k分别为第k个子载波的信道透射率、过噪声、探测效率和电噪声。χ[Bk):Ek)]为第k个子载波Bob和Eve之间的Holevo边界,可表示为
$ \chi \left[ {B\left( k \right):E\left( k \right)} \right]{\text{ = }}\sum\limits_{i = 1}^2 {G\left( {\frac{{{\lambda _i}\left( k \right) - 1}}{2}} \right)} - \sum\limits_{i = 3}^5 {G\left( {\frac{{{\lambda _i}\left( k \right) - 1}}{2}} \right)} $
式中,Gx)=(x+1)log2x+1)−xlog2x。辛特征值λik)由第k个子载波的协方差矩阵推导计算为
$ {\lambda _{1,2}}\left( k \right) = \sqrt {\frac{1}{2}\left[ {A\left( k \right) \pm \sqrt {{A^2}\left( k \right) - 4B\left( k \right)} } \right]} $
$ {\lambda _{3,4}}\left( k \right) = \sqrt {\frac{1}{2}\left[ {C\left( k \right) \pm \sqrt {{C^2}\left( k \right) - 4D\left( k \right)} } \right]} $
$ {\lambda _5}\left( k \right) = 1 $
式中,
$ A\left(k\right)=V^2\left(k\right)\left(1-2T_k\right)+2T_k+T_k^2\left[V\left(k\right)+\chi\mathrm{_{line}}\left(k\right)\right]^2 $
$ B\left(k\right)=T_k^2\left[V\left(k\right)\chi\mathrm{_{line}}\left(k\right)+1\right]^2 $
$\begin{split} C\left( k \right) = & \frac{1}{{{T_k}^2{{\left[ {V\left( k \right)+{\chi _{{\mathrm{tot}}}}\left( k \right)} \right]}^2}}}\\ &\left\{ \begin{gathered} A\left( k \right)\chi _{{\mathrm{het}}}^2\left( k \right)+B\left( k \right)+1 \hfill \\+2{\chi _{{\mathrm{het}}}}\left( k \right)\{ V\left( k \right)\sqrt {B\left( k \right)} \hfill \\+{T_k}\left[ {V\left( k \right)+{\chi _{{\mathrm{line}}}}\left( k \right)} \right] \} \hfill \\+2{T_k}\left[ {{V^2}\left( k \right) - 1} \right] \hfill \\ \end{gathered} \right\}\end{split} $
$ D\left( k \right) = \frac{{{{\left[ {V\left( k \right)+\sqrt {B\left( k \right)} {\chi _{{\mathrm{het}}}}\left( k \right)} \right]}^2}}}{{{T_k}^2{{\left[ {V\left( k \right)+{\chi _{{\mathrm{tot}}}}\left( k \right)} \right]}^2}}} $
图1所示,实验展示了基于OFDM的多载波CV−QKD系统。在Alice端,Alice激光器输出频率为fA的连续光载波由偏振分束器分为2路。一路光载波进入IQ调制器中进行调制,其中IQ调制器上加载由任意波形发生器(arbitrary waveform generator,AWG)生成重复频率为frep=10 GHz的OFDM量子密钥电信号(IsQs)。IQ调制器输出的OFDM光信号由光衰减器衰减为所需的OFDM量子信号光(N路独立并行传输的量子正交子载波)。Alice端产生OFDM量子密钥电信号的具体流程为:(1) 一组高速量子随机序列串并转换为N=5路平行的低速量子随机序列,接着每路低速量子随机序列进行高斯映射并插入比例a=1/5的训练序列,其中训练序列主要用于Bob端量子信号的相位补偿;(2) N=5路高斯映射的量子随机序列经逆快速傅里叶变换和并串变换形成所需的OFDM量子密钥数字信号;(3) 形成的OFDM量子密钥数字信号经滚降因子为0.3的根升余弦(root raised cosine,RRC)滤波并上采样为30 GSa/s,接着为在Bob端实现中频探测,将上采样的OFDM量子密钥数字信号进行频率为fs=8.5 GHz的移频处理;(4) 最后,提取OFDM量子密钥数字信号的实部和虚部分别由AWG的两路DAC转换为IQ调制器所需的OFDM量子密钥电信号(IsQs)。另一路光载波直接由光衰减器衰减为所需的经典导频光。最后,Alice端形成的OFDM量子信号光和经典导频光以偏振和宽带频分复用方式进入光纤信道进行共纤传输。值得注意的是,在实验中将OFDM量子信号光和经典导频光之间频率间隔尽可能设置大些,不仅可以避免经典导频光的同频带光子泄露噪声串扰,而且可以避免强经典导频光引起的散射谱(如布里渊散射)影响[12]
到达Bob端的OFDM量子信号光和经典导频光由偏振控制器进行纠偏处理,并将正交偏振复用的OFDM量子信号光和经典导频光进行分离。同时,Bob激光器输出频率为fB的本振光由偏振分束器分为两路,并分别与同偏振的OFDM量子信号光和经典导频光在2个不同平衡探测器中进行相干探测,得到的一路频谱图如图2所示。
值得注意的是,2个独立激光器输出光信号的频差ΔfAB设置在16 GHz左右。2个平衡探测器输出的探测结果分别输入数字存储示波器(digital storage oscilloscope,DSO)的2个通道进行采集,DSO的采样率设置为40 GSa/s。实验中,Alice端的AWG与Bob端的DSO由同一个100 MHz的时钟信号作为同步基准,从根本上消除了Alice和Bob两端采样时钟之间的频率偏差,从而增强了相位跟踪能力,有效抑制了相位漂移,保障了10 GHz CV−QKD系统的稳定运行。将DSO采样的量子信号和导频信号进行数字信号处理,实现OFDM量子密钥信号的数字解调,具体的数字解调流程如下:(1) 通过峰值搜索算法搜索经典导频信号的频谱峰值,得到2个激光器的实时频差ΔfAB=15.99 GHz,则在已知fs=8.5 GHz下OFDM量子信号的中心频率ΔfABfs可以计算为7.49 GHz;(2) 通过获得的中心频率ΔfABfs和ΔfAB,将OFDM量子信号和经典导频信号分别进行带通滤波、正交下变频和RRC匹配滤波分别获得OFDM量子信号的正交分量Iq+jQq和经典导频信号的正交分量Ip+jQp;(3) 设计了一种双级相位噪声补偿算法,首先利用经典导频信号的正交分量Ip+jQp中共享相位信息对OFDM量子信号的正交分量Iq+jQq进行快速相位补偿,主要消除2个独立激光器和光纤信道的快速变化相位,然后利用OFDM量子信号中内嵌入1/5比例的训练序列按一定的时间段对OFDM量子信号中的残余相位噪声进行精细补偿;(4) 经相位补偿的OFDM量子信号通过串并转换和快速傅里叶变换最终形成5路量子密钥序列。实验中,为实现每路1.6 Gbps速率的量子密钥后处理,采用6个GPU并行处理方法设计了吞吐量大于1.6 Gbps的数据后处理方案,且单个GPU最低可实现279.2 Mbps的密钥纠错速率。
为实现每个子载波最优安全成码率,本研究开展了不同传输距离下调制方差VA、协调效率β和误帧率FER的全局优化[25]。具体的优化过程如下:(1) 针对第k个子载波,首先估计出与调制方差VAk)无关的信道透射率Tk、过噪声εk和探测效率ηk;(2) 在调制方差为0~10 SNU的范围内,通过对应的信噪比SNRk和纠错矩阵Hk计算出码率CRk,然后利用公式CRk/(0.5log2(1+SNRk))计算出βkVAk)之间的关系式;(3) 在特定数据协调和纠错性能下,通过实验拟合数据获得第k个子载波分别在5、10、25、50和75 km传输距离下FERkVAk)之间关系式;(4) 基于获得的βkVAk)和FERkVAk)2个关系式,可以得到第k个子载波的安全码率Rk)与调制方差VAk)之间的关系式,如此可获得最优调制方差下的最大安全码率。依据上述全局优化方法,获得5个子载波的最优调制方差VA、协调效率β和误帧率FER的全局优化结果,并总结在表1中。
依据系统重复频率frep=10 GHz,表1中的最优调制方差、协调效率β和误帧率FER,探测效率η=0.45(5个子载波探测效率实测近似相等),在数据量为1.3×107下估计得到5个子载波在5、10、25、50和75 km传输距离下的过噪声值,如图3所示,验证了一个超低过噪声的多载波CV−QKD实验系统。值得注意的是,本研究的散粒噪声单位(shot noise unit,SNU)采用一次性校准方法,即散粒噪声和电噪声之和作为SNU,显著提升了系统稳定性[26]。在本文的多载波CV−QKD系统实验中,单个子载波的过噪声主要包括激光器强度噪声、DAC/ADC量化噪声、调制噪声、光纤信道的光子泄漏噪声、探测噪声及相位噪声[27]。其中,ADC量化噪声和探测器噪声作为接收端可信器件噪声,在安全码率评估时可作为可信噪声。激光器强度噪声主要由所采用的激光器性能决定,本实验采用了相对强度噪声为−135 dBc@10 MHz的窄线宽激光器,在调制方差为4 SNU情况下仅引入了7.11×10−4 SNU的过噪声。DAC量化噪声主要由DAC的量化位数决定,在调制方差为4 SNU情况下将引入4.1×10−3 SNU的过噪声。本研究中的光纤信道光子泄漏噪声非常小,主要是由于采用了宽带频分与偏振复用技术,在频域和偏振域将OFDM量子信号光与经典导频光进行有效隔离,且通过设置2 GHz的宽带频率间隔有效地避免了经典导频光引起的散射谱对OFDM量子信号光的串扰。多载波CV−QKD系统的调制噪声在子载波数N=5时的理论值为4.3×10−3 SNU,其不仅包括传统单载波CV−QKD系统中的IQ调制器的有限消光比噪声和IQ不平衡噪声,而且包括额外引入的各个子载波之间的交调噪声。多载波CV−QKD系统的相位噪声在子载波数N=5时理论值为3.6×10−3 SNU,其主要包括光纤色散噪声、信道相位噪声、时变激光相位噪声,以及额外的子载波间干扰噪声。除去已理论建模的过噪声,多载波CV−QKD系统其他噪声可能来源于IQ调制器偏置漂移噪声、残余相位与偏振噪声等。
利用图3获得的5个子载波的过噪声,并依据多载波CV−QKD系统安全协议理论估计得到5个子载波的安全码率,概括在表2中。同时,将不同传输距离下5个子载波的平均安全码率相加得到多载波CV−QKD系统的安全码率,分别为1819.32 Mbps@5 km、1078.48 Mbps@10 km、374.19 Mbps@25 km、112.96 Mbps@50 km和34.63 Mbps@75 km,验证了本研究提出的基于OFDM的多载波CV−QKD系统实现了10 km城域距离下Gbps量级和50 km城域距离下100 Mbps量级的安全码率。
基于OFDM技术实现10 GHz重复频率的高速多载波CV−QKD系统,并通过设计双级相位噪声补偿方案和高性能数据后处理方案,首次实现了10 km传输距离下Gbps量级和50 km传输距离下100 Mbps量级的安全码率。为进一步突出本研究提出的基于OFDM的多载波CV−QKD系统优势,还开展了10 GHz重复频率的单载波CV−QKD系统实验验证。在多载波CV−QKD系统相同的实验条件下,包括相同的实验装置、调制方差优化方案和相位噪声补偿方案等,10 GHz重复频率的单载波CV−QKD系统在1.3×107数据量下过噪声和渐近安全码率评估值如图4所示,在5、10、25、50和75 km安全传输距离下平均安全码率分别为1670.69、976.74、332.14、73.22和6.24 Mbps。因此,对比不同传输距离下多载波CV−QKD系统和单载波CV−QKD系统的安全码率,能够获得多载波系统安全码率增益值分别为1.09@5 km、1.10@10 km、1.13@25 km、1.54@50 km和5.55@75 km,如图5所示,表明在相同实验条件下本研究提出的基于OFDM的多载波CV−QKD系统能将安全码率提升4倍,且量子密钥分发的带宽越大和传输距离越长,多载波CV−QKD系统的性能优势越明显。在75 km传输距离下,多载波系统的安全码率增益实验值低于理论值。这一现象揭示了系统在极低信噪比条件下的性能瓶颈:虽然多载波设计本身通过子信道并行传输,有效规避了单载波系统在长距离下难以克服的巨大色散噪声,从而降低了对总体相位噪声补偿能力的要求;然而,信噪比的严重恶化最终限制了本研究相位噪声补偿算法的效能,导致残余相位噪声增加,是安全码率增益下降的主要原因。
此外,提出的多载波CV−QKD系统还具备实时、随机调节每个子载波的重复频率和调制协议的能力,能够灵活满足不同传输信道和不同密钥分发用户需求,具有很好的可操作性、安全性和环境适应性。
本研究将OFDM技术和CV−QKD技术结合,并实现了多载波CV−QKD协议设计及10 GHz重复频率的多载波CV−QKD系统实验验证。首先,在传统单载波CV−QKD协议的基础上,设计出基于OFDM的多载波CV−QKD协议,建立了多载波CV−QKD系统安全码率评估理论模型。其次,开展了子载波数N=5的多载波CV−QKD系统实验验证,通过设计高精确的双级相位噪声补偿方案,实现了一个超低过噪声的多载波CV−QKD系统,并理论建模分析了多载波CV−QKD系统激光器强度噪声、调制噪声、光纤信道光子泄露噪声、DAC/ADC量化噪声、探测噪声及相位噪声,特别是多载波技术额外引入的子载波之间交调噪声和干扰噪声。再次,基于多GPU并行处理方法,实现吞吐量大于1.6 Gbps的数据后处理方案,且单GPU最低可实现279.2 Mbps的密钥纠错速率,为实现Gbps量级安全码率的实时量子密钥分发提供技术支撑。通过上述关键技术攻关,提出的基于OFDM的多载波CV−QKD系统在5、10、25、50、75 km传输距离下分别实现了1819.32、1078.48、374.19、112.96、34.63 Mbps的安全码率,首次实现了10 km城域距离内Gbps量级的安全码率和50 km城域距离内100 Mbps量级的安全码率。最后,为进一步突出所提出的多载波CV−QKD系统的技术优势,在同等实验条件下开展了10 GHz重复频率的单载波CV−QKD系统实验验证,经对比多载波CV−QKD系统在不同传输距离下的多载波安全码率增益分别可达1.09@5 km、1.10@10 km、1.13@2 5km、1.54@50 km和5.55@75 km,表明多载波CV−QKD系统方案更适用于宽带、长距离量子密钥分发,可为未来高性能量子保密通信提供有效解决方案。
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2026年第44卷第11期
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doi: 10.3981/j.issn.1000-7857.2025.04.00141
  • 接收时间:2025-04-28
  • 首发时间:2026-06-23
  • 出版时间:2026-06-13
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出版历史
  • 收稿日期:2025-04-28
  • 修回日期:2025-12-03
基金
国家密码科学基金面上项目(2025NCSF02052)
国家密码科学基金面上项目(2025NCSF02053)
国家自然科学基金联合基金重点项目(U24B20135)
国家自然科学基金联合基金重点项目(U25B2014)
国家自然科学基金面上项目(62471446)
四川省自然科学基金面上项目(2024NSFSC0470)
四川省自然科学基金面上项目(2024NSFSC0454)
保密通信全国重点实验室稳定支持基金项目(WD202503)
保密通信全国重点实验室稳定支持基金项目(WD202501)
保密通信全国重点实验室稳定支持基金项目(WD202502)
作者信息
    1西南通信研究所保密通信全国重点实验室,成都 610041
    2北京邮电大学信息光子学与光通信全国重点实验室,北京 100876

通讯作者:

徐兵杰(通信作者),研究员,研究方向为量子密码技术、量子保密通信技术,电子信箱:
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2种不同金属材料的力学参数

Family
属数
Number of
genus
种数
Number of
species
占总种数比例
Percentage of
total species (%)

Genus
种数
Number of
species
占总种数比例
Percentage of total
species (%)
鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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