{"title":"Ultrafast All-Optical Switching and Active Sub-Cycle Waveform Control via Time-Variant Photodoping of Terahertz Metasurfaces.","authors":"Jeongmin Jang, Junsuk Rho, Hee Jun Shin","doi":"10.1002/advs.202413719","DOIUrl":null,"url":null,"abstract":"<p><p>The development of high-speed and high-performance optical switches has been a long-standing issue in the field of photonics. This paper introduces a pioneering time-resolved spectroscopy-based approach for realizing photon-induced ultrafast terahertz (THz) modulation within an electrical split-ring resonator (SRR) via photoexcitation, rather than relaxation dynamics, in a silicon-based indirect-bandgap material. Two competitive effects (shorting of LC circuit and metallization of substrate) occur during photon-induced THz modulation. The tradeoff between these two effects enables high-speed optical switching via different time scales of the photoexcitation processes-THz-optical cooperative effect and phonon-assisted electron transition. THz-optical cooperative photoexcitation, causing a shorting effect within the LC circuit, has been observed in the SRR gap, whose size typically exceeds that facilitating impact ionization (IMI). Notably, a remarkably short THz switching time of 1.3 ps has been achieved via only photoexcitation and with a high-performance transmission intensity modulation depth of over 500%. In addition, active temporal waveform control down to a sub-cycle pulse has been successfully demonstrated. The proposed approach suggests a new route for constructing high-speed and efficient THz dynamic photonic devices with potential applications in temporal waveform control.</p>","PeriodicalId":117,"journal":{"name":"Advanced Science","volume":" ","pages":"e2413719"},"PeriodicalIF":14.3000,"publicationDate":"2025-02-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Advanced Science","FirstCategoryId":"88","ListUrlMain":"https://doi.org/10.1002/advs.202413719","RegionNum":1,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
The development of high-speed and high-performance optical switches has been a long-standing issue in the field of photonics. This paper introduces a pioneering time-resolved spectroscopy-based approach for realizing photon-induced ultrafast terahertz (THz) modulation within an electrical split-ring resonator (SRR) via photoexcitation, rather than relaxation dynamics, in a silicon-based indirect-bandgap material. Two competitive effects (shorting of LC circuit and metallization of substrate) occur during photon-induced THz modulation. The tradeoff between these two effects enables high-speed optical switching via different time scales of the photoexcitation processes-THz-optical cooperative effect and phonon-assisted electron transition. THz-optical cooperative photoexcitation, causing a shorting effect within the LC circuit, has been observed in the SRR gap, whose size typically exceeds that facilitating impact ionization (IMI). Notably, a remarkably short THz switching time of 1.3 ps has been achieved via only photoexcitation and with a high-performance transmission intensity modulation depth of over 500%. In addition, active temporal waveform control down to a sub-cycle pulse has been successfully demonstrated. The proposed approach suggests a new route for constructing high-speed and efficient THz dynamic photonic devices with potential applications in temporal waveform control.
期刊介绍:
Advanced Science is a prestigious open access journal that focuses on interdisciplinary research in materials science, physics, chemistry, medical and life sciences, and engineering. The journal aims to promote cutting-edge research by employing a rigorous and impartial review process. It is committed to presenting research articles with the highest quality production standards, ensuring maximum accessibility of top scientific findings. With its vibrant and innovative publication platform, Advanced Science seeks to revolutionize the dissemination and organization of scientific knowledge.