材料科学
光电子学
紫外线
二次谐波产生
纳米尺度
高次谐波产生
光学
波前
激光器
纳米技术
物理
作者
Ming Lun Tseng,Michael Semmlinger,Ming Zhang,Catherine Arndt,Tzu‐Ting Huang,Jian Yang,Hsin Yu Kuo,Vin‐Cent Su,Mu Ku Chen,Cheng Hung Chu,Benjamin Cerjan,Din Ping Tsai,Peter Nordlander,Naomi J. Halas
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-04-20
卷期号:8 (16): eabn5644-eabn5644
被引量:108
标识
DOI:10.1126/sciadv.abn5644
摘要
Vacuum ultraviolet (VUV) light plays an essential role across science and technology, from molecular spectroscopy to nanolithography and biomedical procedures. Realizing nanoscale devices for VUV light generation and control is critical for next-generation VUV sources and systems, but the scarcity of low-loss VUV materials creates a substantial challenge. We demonstrate a metalens that both generates—by second-harmonic generation—and simultaneously focuses the generated VUV light. The metalens consists of 150-nm-thick zinc oxide (ZnO) nanoresonators that convert 394 nm (~3.15 eV) light into focused 197-nm (~6.29 eV) radiation, producing a spot 1.7 μm in diameter with a 21-fold power density enhancement as compared to the wavefront at the metalens surface. The reported metalens is ultracompact and phase-matching free, allowing substantial streamlining of VUV system design and facilitating more advanced applications. This work provides a useful platform for developing low-loss VUV components and increasing the accessibility of the VUV regime.
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