1. Bhardwaj, Pranay and Syed Mohammad Zafaruddin, "On the performance of multihop THz wireless system over mixed channel fading with shadowing and antenna misalignment," IEEE Transactions on Communications, Vol. 70, No. 11, 7748-7763, Nov. 2022. Google Scholar
2. Ong, Duu Sheng, Siti Amiera Mohd Akhbar, and Kan Yeep Choo, "Notch-δ-doped InP Gunn diodes for low-THz band applications," Journal of Electronic Science and Technology, Vol. 21, No. 2, 100203, 2023. Google Scholar
3. You, Xiaohu, Cheng-Xiang Wang, Jie Huang, Xiqi Gao, Zaichen Zhang, Mao Wang, Yongming Huang, Chuan Zhang, Yanxiang Jiang, Jiaheng Wang, et al. "Towards 6G wireless communication networks: Vision, enabling technologies, and new paradigm shifts," Science China Information Sciences, Vol. 64, 1-74, 2021. Google Scholar
4. Elaage, Serghini, Mohammed El Ghzaoui, Abdlmounim Hmamou, Jaouad Foshi, and Jamal Mestoui, "MB-OOK transceiver design for terahertz wireless communication systems," International Journal of Systems, Control and Communications, Vol. 12, No. 4, 309-326, 2021. Google Scholar
5. Tekbiyik, Kürşat, Ali. Ekti, Gunes Karabulut Kurt, and Ali. Görçin, "Terahertz band communication systems: Challenges, novelties and standardization efforts," Physical Communication, Vol. 35, 100700, 2019.
doi:10.1016/j.phycom.2019.04.014 Google Scholar
6. Xie, Jie, Xue-Song Yuan, Liang Zhang, Adrian W Cross, Hua-Bi Yin, Qing-Yun Chen, Tong-Bin Yang, Xiao-Tao Xu, Yang Yan, and Lin Meng, "Dual-mode terahertz extended interaction oscillator driven by a pseudospark-sourced sheet electron beam," Journal of Electronic Science and Technology, Vol. 19, No. 3, 100093, 2021. Google Scholar
7. Chen, Zhi, Xinying Ma, Bo Zhang, Yaxin Zhang, Zhongqian Niu, Ningyuan Kuang, Wenjie Chen, Lingxiang Li, and Shaoqian Li, "A survey on terahertz communications," China Communications, Vol. 16, No. 2, 1-35, 2019. Google Scholar
8. El Ghzaoui, Mohammed, Sudipta Das, Trupti Ranjan Lenka, and Arindam Biswas, Terahertz Wireless Communication Components and System Technologies, Springer, 2022.
doi:10.1007/978-981-16-9182-9
9. Ning, Boyu, Peilan Wang, Lingxiang Li, Zhi Chen, and Jun Fang, "Multi-IRS-aided multi-user MIMO in mmWave/THz communications: A space-orthogonal scheme," IEEE Transactions on Communications, Vol. 70, No. 12, 8138-8152, Dec. 2022. Google Scholar
10. Pang, Lihua, Yudong Li, Yang Zhang, Minghao Shang, Yijian Chen, and Anyi Wang, "MGGAN-based hybrid beamforming design for massive MIMO systems against rank-deficient channels," IEEE Communications Letters, Vol. 26, No. 11, 2804-2808, Nov. 2022. Google Scholar
11. Varzakas, Panagiotis, "Average channel capacity for Rayleigh fading spread spectrum MIMO systems," International Journal of Communication Systems, Vol. 19, No. 10, 1081-1087, Dec. 2006. Google Scholar
12. Kalialakis, Christos, Theodoros Kaifas, and Apostolos Georgiadis, "Correlation effects on the MIMO capacity for conformal antennas on a paraboloid," Progress In Electromagnetics Research M, Vol. 50, 1-10, 2016. Google Scholar
13. El Ghzaoui, Mohammed, Jamal Mestoui, Abdelmounim Hmamou, and Serghini Elaage, "Performance analysis of multiband on-off keying pulse modulation with noncoherent receiver for THz applications," Microwave and Optical Technology Letters, Vol. 64, No. 12, 2130-2135, 2022. Google Scholar
14. Abed, Hadeel S. and Hikmat N. Abdullah, "Improvement of spectrum sensing performance in cognitive radio using modified hybrid sensing method," Acta Polytechnica, Vol. 62, No. 2, 228-237, 2022. Google Scholar
15. Moldovan, Anamaria, Michael A. Ruder, Ian F. Akyildiz, and Wolfgang H. Gerstacker, "LOS and NLOS channel modeling for terahertz wireless communication with scattered rays," 2014 IEEE Globecom Workshops (GC Wkshps), 388-392, Austin, TX, USA, 2014.
16. Xu, Zheng, Xiaodai Dong, and Jens Bornemann, "Design of a reconfigurable MIMO system for THz communications based on graphene antennas," IEEE Transactions on Terahertz Science and Technology, Vol. 4, No. 5, 609-617, 2014. Google Scholar
17. Jornet, Josep Miquel and Ian F. Akyildiz, "Channel modeling and capacity analysis for electromagnetic wireless nanonetworks in the terahertz band," IEEE Transactions on Wireless Communications, Vol. 10, No. 10, 3211-3221, 2011. Google Scholar
18. Ding, Junjie, Yuxuan Tan, Yanyi Wang, Jiao Zhang, Menghui He, Feng Zhao, Li Zhao, Wen Zhou, Yiwei Shi, Min Zhu, and Jianjun Yu, "352-Gbit/s single line rate THz wired transmission based on PS-4096QAM employing hollow-core fiber," Digital Communications and Networks, Vol. 9, No. 3, 717-722, 2023. Google Scholar
19. Bhattacharjee, Rituraj, Priyanka Dey, and Ardhendu Saha, "Implementation of an enhanced 32 channel 256 Gbps DWDM based radio over fiber optical system for constricted channel spacing employing fiber bragg grating," Optik, Vol. 253, 168598, 2022. Google Scholar
20. Qiao, Mengyao, Lu Zhang, Shiwei Wang, Wei Li, Zijie Lu, Xiaodan Pang, Le Zhang, Shilie Zheng, Xiaofeng Jin, Xianmin Zhang, and Xianbin Yu, "60 Gbit/s PAM-4 wireless transmission in the 310 GHz band with nonlinearity tolerant signal processing," Optics Communications, Vol. 492, 126988, 2021. Google Scholar
21. Ehsan, Esra, Razali Ngah, and Nurul Ashikin Binti Daud, "A 1.792 Tbps RoF-based PDM-DQPSK DWDM system for high-capacity long-haul 5G and beyond optical network," Optik, Vol. 269, 169858, 2022. Google Scholar
22. El Ghzaoui, Mohammed, Jamal Mestoui, Abdelmounim Hmamou, and Serghini Elaage, "Performance analysis of multiband on–off keying pulse modulation with noncoherent receiver for THz applications," Microwave and Optical Technology Letters, Vol. 64, No. 12, 2130-2135, 2022. Google Scholar
23. Shurakov, Alexander, Dmitri Moltchanov, Anatoliy Prikhodko, Abdukodir Khakimov, Evgeny Mokrov, Vyacheslav Begishev, Ivan Belikov, Yevgeni Koucheryavy, and Gregory Gol’tsman, "Empirical blockage characterization and detection in indoor sub-THz communications," Computer Communications, Vol. 201, 48-58, 2023.
doi:10.1016/j.comcom.2023.01.017 Google Scholar
24. Choi, Yonghoon, Ji-Woong Choi, and John M Cioffi, "A geometric-statistic channel model for THz indoor communications," Journal of Infrared, Millimeter, and Terahertz Waves, Vol. 34, No. 7, 456-467, 2013. Google Scholar
25. Cheng, Chia-Lin, Seun Sangodoyin, and Alenka Zajić, "THz cluster-based modeling and propagation characterization in a data center environment," IEEE Access, Vol. 8, 56544-56558, 2020. Google Scholar
26. Kokkoniemi, Joonas, Janne Lehtomäki, Kenta Umebayashi, and Markku Juntti, "Frequency and time domain channel models for nanonetworks in terahertz band," IEEE Transactions on Antennas and Propagation, Vol. 63, No. 2, 678-691, 2015.
doi:10.1109/TAP.2014.2373371 Google Scholar
27. Tsujimura, Kazuhiro, Kenta Umebayashi, Joonas Kokkoniemi, Janne Lehtomäki, and Yasuo Suzuki, "A causal channel model for the terahertz band," IEEE Transactions on Terahertz Science and Technology, Vol. 8, No. 1, 52-62, 2018.
doi:10.1109/TTHZ.2017.2771476 Google Scholar
28. Ekti, Ali Riza, Ali Boyaci, Altan Alparslan, İlhami Ünal, Serhan Yarkan, Ali Görçin, Hüseyin Arslan, and Murat Uysal, "Statistical modeling of propagation channels for terahertz band," 2017 IEEE Conference on Standards for Communications and Networking (CSCN), 2017.
29. Jornet, Josep Miquel and Ian F. Akyildiz, "Channel modeling and capacity analysis for electromagnetic wireless nanonetworks in the terahertz band," IEEE Transactions on Wireless Communications, Vol. 10, No. 10, 3211-3221, 2011. Google Scholar
30. Wang, Shih-Wei, Po-Ning Chen, and Chung-Hsuan Wang, "Optimal power allocation for (N,K)-limited access channels," IEEE Transactions on Information Theory, Vol. 58, No. 6, 3725-3750, 2012. Google Scholar
31. Telatar, Emre, "Capacity of multi-antenna Gaussian channels," European Transactions on Telecommunications, Vol. 10, No. 6, 585-595, 1999. Google Scholar