Diffraction-limited imaging with monolayer 2D material-based ultrathin flat lenses

被引:0
作者
Han Lin
Zai-Quan Xu
Guiyuan Cao
Yupeng Zhang
Jiadong Zhou
Ziyu Wang
Zhichen Wan
Zheng Liu
Kian Ping Loh
Cheng-Wei Qiu
Qiaoliang Bao
Baohua Jia
机构
[1] Swinburne University of Technology,Centre for Translational Atomaterials, Faculty of Science, Engineering and Technology
[2] Monash University,Department of Materials Science and Engineering, ARC Centre of Excellence in Future Low
[3] University of Technology Sydney,Energy Electronics Technologies (FLEET)
[4] Shenzhen University,School of Mathematical and Physical Sciences, Faculty of Science
[5] Nanyang Technological University,Institute of Microscale Optoelectronics, Lab of Artificial Microstructure for Optoelectronics
[6] National University of Singapore,School of Materials Science and Engineering
[7] National University of Singapore,Department of Chemistry
[8] Swinburne University of Technology,Department of Electrical and Computer Engineering
来源
Light: Science & Applications | / 9卷
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摘要
Ultrathin flat optics allow control of light at the subwavelength scale that is unmatched by traditional refractive optics. To approach the atomically thin limit, the use of 2D materials is an attractive possibility due to their high refractive indices. However, achievement of diffraction-limited focusing and imaging is challenged by their thickness-limited spatial resolution and focusing efficiency. Here we report a universal method to transform 2D monolayers into ultrathin flat lenses. Femtosecond laser direct writing was applied to generate local scattering media inside a monolayer, which overcomes the longstanding challenge of obtaining sufficient phase or amplitude modulation in atomically thin 2D materials. We achieved highly efficient 3D focusing with subwavelength resolution and diffraction-limited imaging. The high focusing performance even allows diffraction-limited imaging at different focal positions with varying magnifications. Our work paves the way for downscaling of optical devices using 2D materials and reports an unprecedented approach for fabricating ultrathin imaging devices.
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