(Peer-Reviewed) Entropy-loaded digital subcarrier multiplexing transmission adaptive to the loss-spectrum ripples of hollow-core fiber
Hailin Yang 杨海林 ¹ ² ³, Meng Xiang 向梦 ¹ ² ³, Cong Zhang 张聪 ¹ ² ³, Lipeng Feng 冯立鹏 ⁴, Peng Li 李鹏 ⁵, Lei Zhang 张磊 ⁵, Jie Luo 罗杰 ⁵, Jianping Li 李建平 ¹ ² ³, Songnian Fu 付松年 ¹ ² ³, Yuwen Qin 秦玉文 ¹ ² ³
¹ Institute of Advanced Photonics Technology, School of Information Engineering, Guangdong University of Technology, Guangzhou 510006, China
中国 广州 广东工业大学信息工程学院先进光子技术研究院
² Key Laboratory of Photonic Technology for Integrated Sensing and Communication, Ministry of Education of China, Guangdong University of Technology, Guangzhou, 510006, China
中国 广州 广东工业大学通感融合光子技术教育部重点实验室
³ Guangdong Provincial Key Laboratory of Information Photonics Technology, Guangdong University of Technology, Guangzhou, 510006, China
中国 广州 广东工业大学 广东省信息光子技术重点实验室
⁴ China Telecom Research Institute, State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Beijing, 102209, China
中国 北京 中国电信研究院 光纤光缆制备技术国家重点实验室
⁵ State Key Laboratory of Optical Fiber and Cable Manufacture Technology, Yangtze Optical Fibre and Cable Joint Stock Limited Company (YOFC), 430073, China
中国 武汉 长飞光纤光缆股份有限公司 光纤光缆制备技术国家重点实验室
Opto-Electronic Technology, 2026-06-28
Abstract
Hollow-core fibers (HCFs) are promising candidates for photonic data-center interconnects (DCIs) owing to their low loss, low latency, ultra-low nonlinearity, low dispersion, and broad transmission window. However, loss-spectrum ripples significantly constrain both the usable bandwidth and the achievable capacity.
To address such issue, we propose and experimentally demonstrate an entropy-loaded digital subcarrier multiplexing (DSM) transmission scheme over the nested anti-resonant nodeless fiber (NANF).
Here, dynamic entropy is allocated to each subcarrier (SC) based on the signal-to-noise ratio (SNR) variation induced by the loss-spectrum ripples. For single-channel transmission centered at 1550.12 nm, entropy-loaded probabilistic constellation shaping dual-polarization 256 quadrature amplitude modulation (PCS-DP-256QAM) DSM signals can realize a net bit-rate of 613.3 Gbit/s adaptive transmission over 2 km NANF having a peak-to-peak loss-spectrum ripple of 0.4 dB within a channel spacing of 0.51 nm. Meanwhile, this transmission remains nonlinear impairment-free even at a record-high launch power of 39 dBm.
Furthermore, we demonstrate 40-channel dense wavelength division multiplexing (DWDM) DSM transmission over 10 km NANF, achieving a net bit-rate of more than 602.7 Gbit/s per wavelength and a total capacity of 24.14 Tbit/s, when the entropy-loaded PCS-DP-256QAM DSM signals are individually generated under a peak-to-peak loss-spectrum ripple of 0.7 dB over the extended C-band. Compared with conventional uniform-entropy DSM, our proposed scheme enhances the aggregate capacity by 18.28%. Such an innovative transmission scheme adaptive to broadband loss-spectrum ripples effectively unlocks the HCF full potential for photonic DCIs.
Unlocking home-based nocturnal health management: A fiber-optic approach for early detection of cardiorespiratory rhythm disorders
Hanyu Jin, Hao Li, Zhuolin Chen, Liangye Li, Zurui Wang, Kai Zhou, Weijian Hang, Zhipeng Chen, Junfeng Chen, Kai Shen, Jianfeng Wen, Chen Chen, Cunzheng Fan, Zhijun Yan, Feng Wang, Qizhen Sun
Opto-Electronic Advances
2026-07-10
A flexible wireless system for prospective photodynamic therapy applications
Rolan Mansour, Bhavani Yalagala, Vikas Vikas, Nikolas Bruce, Fawziye Tarhini, Georgios N. Arvanitakis, Mohammed Mughal, Jamie Blanche, Ahmad Taha, Jonathan Copper, Muhammad Imran, Karin Williams, Karin Oien, Mahmoud Wagih, Hadi Heidari, Robert Hadfield, David Flynn
Opto-Electronic Advances
2026-07-10
Parallel bright-field and multi-order edge imaging via wide field-of-view trichannel metalens
Xiaotong Li, Yeseul Kim, Youngsun Jeon, Junhwa Seong, Jaekyung Kim, Peng Tang, Shiqi Hu, Harit Keawmuang, Beomha Yang, Dongmin Jeon, Le Dai, Weiyan Li, Xiaodong Cai, Jinhui Shi, Yong-Sang Ryu, Trevon Badloe, Junsuk Rho
Opto-Electronic Advances
2026-07-10