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低维半导体微纳激光研究进展

Review of Low-Dimensional Semiconductor Micro-and Nano-Lasers
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摘要 半导体微纳激光是纳米技术与纳米光子学交叉研究的前沿领域之一。利用光波长量级的光学谐振腔在光泵浦或电激励下实现激光输出,具有物理尺寸小、可高度集成、低阈值以及低功耗等优点。在未来光子器件、光学集成、光通信以及激光显示等领域具有广泛的应用前景。探讨了低维半导体微纳激光领域所取得的成果与研究进展,并对基于新型钙钛矿材料的微纳激光研究进行了总结概述,最后对低维微纳激光的发展前景进行了展望。 Significance In the last half century,electronic devices and integrated circuits have achieved great success in information processing.Moore s Law states that the number of transistors in an integrated circuit doubles approximately every 18 months.However,electronic devices and circuits suffer from inherent problems such as resistance-capacitance time delay and thermal effects.According to Moore s Law,by 2020,fewer than one electron will be contained/included in a transistor,which severely limits the development of integrated circuits.Integrated photonics is considered one of the most promising technologies to replace integrated circuits in the post-Moore era.Compared with electronics,photons have advantages such as ultra-high transmission speeds,high parallelism,and wide bandwidths.Photons exist in a highly coherent state as bosons,allowing for parallel transmission without the fear of external interference.In addition,photons have relatively high information capacity and can carry signals at varying emission intensities,wavelengths,and polarization.Semiconductor micro-and nano-lasers are essential components in photonic integration systems as high-performance light sources.Renowned physicist Thomas M.Baer published an opinion in Nature stating that,in the future,scientists will achieve micro/nano-laser outputs with spot sizes of approximately 1 nm,which will facilitate ultra-highresolution imaging and direct sequencing of biomolecules.Therefore,research on semiconductor micro-and nano-lasers is of significance in fields such as integrated displays,integrated photonics,optical information processing,and biological imaging.Semiconductor micro-and nano-lasers utilize wavelength-scale microcavities to achieve laser emission and have advantages such as small sizes,compact structures,and low cost,making them ideal choices for high-performance light sources.Particularly with the development of information technology and integrated optics,the design and fabrication of high-performance micro-and nano-laser sources have become increasingly important.Similar to macroscopic laser systems,the output of micro-and nano-lasers primarily depends on three components:resonant cavity,gain medium,and pump source.To date,advancements in these three aspects have been driving the progress and innovation of semiconductor micro-and nano-lasers.Currently,known resonant cavity structures include edge-emitting,vertical-surface-emitting,distributed Bragg reflector,microdisk,nanowire,microsphere,photonic crystal,and plasmonic cavities.In addition,they can be classified into random-cavity,Fabry-Perot cavity,and ring-cavity lasers as well as photonic crystal microlasers,distributed feedback cavity lasers,and surface plasmon microlasers based on their different resonance mechanisms.The gain media in semiconductor micro-and nano-lasers mainly consist of organic dyes,quantum wells,quantum dots,and two-dimensional transition metal materials.Since the successful demonstration of optical gain in colloidal quantum dots(CQDs)twenty years ago,CQD-based lasers have rapidly developed.However,due to limitations imposed by the quality factors of microcavites,gain material,and spontaneous emission coupling efficiency,the reported outputs of semiconductor micro-and nano-lasers have generally exhibited multimodal structures with poor monochromaticity,low Q-factors,and high thresholds.To achieve high-quality output from low-dimensional semiconductor micro-and nano-lasers,the exploration of new high-gain semiconductor nano-materials,innovative designs,and the fabrication of efficient novel microcavity structures are critical.This article considers the achievements and research progress in the field of low-dimensional semiconductor micro-and nano-lasers and summarizes the research on micro-and nano-lasers based on novel perovskite materials.Finally,the article provides an outlook on the developmental prospects of low-dimensional micro-and nanolasers.Progress When the sizes of semiconductor crystals reach a few nanometers,a quantum size effect occurs due to strong spatial confinement of charge carriers,which provides new possibilities for constructing novel and powerful optoelectronic devices.Semiconductor quantum dots are recognized as materials with superior optical gain as compared with bulk and quantum well materials.Unlike traditional top-down fabrication processes such as photolithography,the unique bottom-up synthesis approach of lowdimensional semiconductor materials not only simplifies the preparation of micro-and nano-lasers but also provides high-quality selfresonant cavities.Perovskite nanomaterials,as a new type of semiconductor optoelectronic material,possess excellent optical properties and high carrier transport characteristics,making them ideal optical gain media for on-chip integrated micro-and nano-light sources.In the field of micro-and nano-lasers,perovskite nanomaterials are mainly grouped into two categories:organic-inorganic hybrid structures and all-inorganic structures based on the ABX3 structure.Studied nanostructures include nanoplates,nanowires,and quantum dots(Fig.1).In 2014,Sum et al.published their findings on amplified spontaneous emission and lasing in MAPbX3 thin-film materials,which initiated research on perovskite micro-and nano-lasers.In 2015,Kovalenko s group reported for the first time spontaneous emission amplification phenomenon in all-inorganic CsPbBr3 perovskite quantum dots.Since then,various lowdimensional semiconductor micro-and nano-lasers have been reported based on different morphological structures,including microring cavities,cubic cavities,nanowires,nanoplates,and quantum dots(Fig.2).In this article,the developmental status of lowdimensional semiconductor micro-and nano-lasers is first introduced.The research progress of micro-and nano-lasers is then presented based on different gain materials and structures,and their applications in fields such as quantum coding,optical anticounterfeiting,ultrafast optics,and other fields are described.Finally,we summarize the development of low-dimensional micro-and nano-laser and forecast future developmental trends.Conclusions and Prospects Low-dimensional semiconductor micro-and nano-structures serve as major platforms for studying the interaction between light and matter.Harnessing the mechanisms of micro-and nano-structures,high-performance research on micro-and nano-lasers involves interdisciplinary collaboration across fields such as chemistry,materials science,and physics.This research has significant applications in areas such as micro-and nano-light sources,optical communication sensing,photonic computing,and quantum information processing.To achieve practical applications of low-dimensional semiconductor micro-and nanolasers through continuous wave pumping and electrical pumping,further exploration and analysis of the physical mechanisms and resonance modes involved in continuous wave pumping laser formation are essential.In addition,a systematic investigation of the requirements for material structures and gain properties under continuous wave pumping is necessary to ensure beam quality and stability of laser output.Finally,achieving electrical injection lasers requires thoughtful and extensively forward-looking research.
作者 董红星 常浩 高新宇 刘靓 成浩东 李欣洁 于珂 Dong Hongxing;Chang Hao;Gao Xinyu;Liu Liang;Cheng Haodong;Li Xinjie;Yu Ke(Key Laboratory of Materials for High-Power Laser,Shanghai Institute of Optics and Fine Mechanics,Chinese Academy of Sciences,Shanghai 201800,China;College of Physics and Optoelectronic Engineering,Hangzhou Institute for Advanced Study,University of Chinese Academy of Sciences,Hangzhou 310024,Zhejiang,China)
出处 《中国激光》 EI CAS CSCD 北大核心 2024年第11期454-473,共20页 Chinese Journal of Lasers
基金 国家自然科学基金(61925506,12374297,62305078) 中国博士后科学基金(2022M723267) 上海市优秀学术带头人(23XD1404500) 上海市扬帆计划(23YF1453900) 上海市自然科学基金(23ZR1471500) 中国科学院特别研究助理资助项目(2022-4217) 杭州市科学技术局(TD2020002)。
关键词 光学谐振腔 钙钛矿材料 微纳激光 超快光学 片上集成 optical resonator perovskite materials micro-and nano-lasers ultrafast optics on-chip integration
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