| [1] | Chowdhury, M. Z., Hasan, Moh. K., Shahjalal, Md., Hossan, Md. T. & Jang, Y. M. Optical Wireless Hybrid Networks: Trends, Opportunities, Challenges, and Research Directions. IEEE Commun. Surveys Tuts. 22, 930–966 (2020). | 
		
				| [2] | Haffner C, et al. All-plasmonic Mach-Zehnder modulator enabling optical high-speed communication at the microscale. Nat Photonics. 2015;9:525–8. | 
		
				| [3] | Dong B, et al. Biometrics-protected optical communication enabled by deep learning–enhanced triboelectric/photonic synergistic interface. Sci Adv. 2022;8: eabl9874. | 
		
				| [4] | Hu F, et al. High-speed visible light communication systems based on Si-substrate LEDs with multiple superlattice interlayers. PhotoniX. 2021;2:16. | 
		
				| [5] | Kim J, et al. Miniaturized flexible electronic systems with wireless power and near-field communication capabilities. Adv Funct Mater. 2015;25:4761–7. | 
		
				| [6] | Hu J, et al. A metasurface-based full-color circular auto-focusing Airy beam transmitter for stable high-speed underwater wireless optical communications. Nat Commun. 2024;15:2944. | 
		
				| [7] | Zhao N, Li X, Li G, Kahn JM. Capacity limits of spatially multiplexed free-space communication. Nat Photonics. 2015;9:822–6. | 
		
				| [8] | Portnoi, M. et al. Bandwidth limits of luminescent solar concentrators as detectors in free-space optical communication systems. Light: Sci. Appl. 10, 3 (2021). | 
		
				| [9] | Park K, et al. Luminescent solar concentrator efficiency enhanced via nearly lossless propagation pathways. Nat Photonics. 2024;18:177–85. | 
		
				| [10] | Kim R-H, et al. Materials and designs for wirelessly powered implantable light‐emitting systems. small. 2012;8:2812–8. | 
		
				| [11] | Tao J, et al. Mass-manufactured beam-steering metasurfaces for high-speed full-duplex optical wireless-broadcasting communications. Adv Mater. 2022;34:2106080. | 
		
				| [12] | Wu Y, et al. Tbps wide-field parallel optical wireless communications based on a metasurface beam splitter. Nat Commun. 2024;15:7744. | 
		
				| [13] | Li M, et al. Millimeter-precision positioning for wide-angle indoor area enabled by metalens-integrated camera. Nanophotonics. 2024;13:4101–10. | 
		
				| [14] | He N, et al. High-speed duplex free space optical communication system assisted by a wide-field-of-view metalens. ACS Photonics. 2023;10:3052–9. | 
		
				| [15] | Umair MA, et al. Long-Range Optical Wireless Communication System Based on a Large-Area. Q-Dots Fluorescent Antenna Laser Photonics Rev. 2023;17:2200575. | 
		
				| [16] | Kay SM, Marple SL. Spectrum analysis—a modern perspective. Proc IEEE. 1981;69:1380–419. | 
		
				| [17] | He, Y. et al. Frequency Offset Estimation for NFDM Optical Communication Systems with Continuous Spectrum Modulation. in 2022 20th International Conference on Optical Communications and Networks (ICOCN) 1–3 (IEEE, Shenzhen, China, 2022). https://doi.org/10.1109/ICOCN55511.2022.9900964. | 
		
				| [18] | Al-Kinani A, Wang C-X, Zhou L, Zhang W. Optical wireless communication channel measurements and models. IEEE Commun Surv Tutor. 2018;20:1939–62. | 
		
				| [19] | Khalighi MA, Uysal M. Survey on free space optical communication: a communication theory perspective. IEEE Commun Surv Tutor. 2014;16:2231–58. | 
		
				| [20] | Zhang Z, et al. Optical mobile communications: principles, implementation, and performance analysis. IEEE Trans Veh Technol. 2019;68:471–82. | 
		
				| [21] | Ali A, Hamouda W. Advances on spectrum sensing for cognitive radio networks: theory and applications. IEEE Commun Surv Tutor. 2017;19:1277–304. | 
		
				| [22] | Jia S, et al. Integrated dual-laser photonic chip for high-purity carrier generation enabling ultrafast terahertz wireless communications. Nat Commun. 2022;13:1388. | 
		
				| [23] | Meinardi F, et al. Certification Grade Quantum Dot Luminescent Solar Concentrator Glazing with Optical Wireless Communication Capability for Connected Sustainable Architecture. Adv Energy Mater. 2024;14:2304006. | 
		
				| [24] | Font-Muñoz JS, Sourisseau M, Cohen-Sánchez A, Tuval I, Basterretxea G. Pelagic diatoms communicate through synchronized beacon natural fluorescence signaling. Sci Adv. 2021;7: eabj5230. | 
		
				| [25] | Liao S-K, et al. Long-distance free-space quantum key distribution in daylight towards inter-satellite communication. Nat Photonics. 2017;11:509–13. | 
		
				| [26] | Li J, et al. Single mode ZnO whispering-gallery submicron cavity and graphene improved lasing performance. ACS Nano. 2015;9:6794–800. | 
		
				| [27] | Tang B, et al. Single-mode lasers based on cesium lead halide perovskite submicron spheres. ACS Nano. 2017;11:10681–8. | 
		
				| [28] | Liu Z, et al. Robust subwavelength single-mode perovskite nanocuboid laser. ACS Nano. 2018;12:5923–31. | 
		
				| [29] | Song J, et al. Continuous-Wave Pumped Perovskite Lasers with Device Area Below 1 µm 2. Adv Mater. 2023;35:2302170. | 
		
				| [30] | Chang, H. et al. Ultrastable low-cost colloidal quantum dot microlasers of operative temperature up to 450 K. Light: Sci. Appl. 10, 60 (2021). | 
		
				| [31] | Zhao Y, et al. All-optical frequency division on-chip using a single laser. Nature. 2024;627:546–52. | 
		
				| [32] | Lee H, et al. Spiral resonators for on-chip laser frequency stabilization. Nat Commun. 2013;4:2468. | 
		
				| [33] | Hu, Z. et al. Advances in metal halide perovskite lasers: synthetic strategies, morphology control, and lasing emission. Advanced Photonics 3, (2021). | 
		
				| [34] | Fu Y, et al. Broad wavelength tunable robust lasing from single-crystal nanowires of cesium lead halide perovskites (CsPbX 3, X = Cl, Br, I). ACS Nano. 2016;10:7963–72. | 
		
				| [35] | Liu H, Zhao J, Ly TH. Clean transfer of two-dimensional materials: a comprehensive review. ACS Nano. 2024;18:11573–97. | 
		
				| [36] | Liu L, et al. A mass transfer technology for high-density two-dimensional device integration. Nat Electron. 2025. https://doi.org/10.1038/s41928-024-01306-w. | 
		
				| [37] | Torres JM, Stafford CM, Vogt BD. Manipulation of the elastic modulus of polymers at the nanoscale: influence of UV−ozone cross-linking and plasticizer. ACS Nano. 2010;4:5357–65. | 
		
				| [38] | Kwon Y, et al. Ultraviolet light blocking optically clear adhesives for foldable displays via highly efficient visible-light curing. Nat Commun. 2024;15:2829. | 
		
				| [39] | Liao Q, et al. Perovskite microdisk microlasers self-assembled from solution. Adv Mater. 2015;27:3405–10. | 
		
				| [40] | Hua B, Motohisa J, Kobayashi Y, Hara S, Fukui T. Single GaAs/GaAsP coaxial core−shell nanowire lasers. Nano Lett. 2009;9:112–6. | 
		
				| [41] | Khurgin JB, Noginov MA. How Do the Purcell Factor, the Q -Factor, and the Beta Factor Affect the Laser Threshold? Laser Photonics Rev. 2021;15:2000250. | 
		
				| [42] | Zhou C, et al. Cooperative excitonic quantum ensemble in perovskite-assembly superlattice microcavities. Nat Commun. 2020;11:329. | 
		
				| [43] | Shannon CE. Communication in the presence of noise. Proc Ire. 1949;37:10–21. | 
		
				| [44] | Lee S, Lee K, Liu C-H, Kulkarni GS, Zhong Z. Flexible and transparent all-graphene circuits for quaternary digital modulations. Nat Commun. 2012;3:1018. | 
		
				| [45] | Lyon D. The discrete Fourier transform, part 4: spectral leakage. J Object Technol. 2009;8:23. | 
		
				| [46] | Zhang L, et al. A wireless communication scheme based on space- and frequency-division multiplexing using digital metasurfaces. Nat Electron. 2021;4:218–27. | 
		
				| [47] | Winzer PJ. Making spatial multiplexing a reality. Nat Photon. 2014;8:345–8. | 
		
				| [48] | Gao Z, et al. Robust low threshold full-color upconversion lasing in rare-earth activated nanocrystal-in-glass microcavity. Light Sci Appl. 2025;14:14. | 
		
				| [49] | Huang J, et al. Manipulating energy migration in nanoparticles toward tunable photochromic upconversion. Nat Commun. 2024;15:10890. | 
		
				| [50] | Tang B, et al. Ultrahigh Quality Upconverted Single-Mode Lasing in Cesium Lead Bromide Spherical Microcavity. Adv Opt Mater. 2018;6:1800391. |