Yang Younghwan, Kang Dohyun, Seong Junhwa, Kim Kyungtae, Kim Seokwoo, Jung Chunghwan, Lee Eunji, Heo Hyeonsu, Kang Hyunjung, Jeon Nara, Lee Jihae, Jeon Youngsun, Park Yujin, Rho Junsuk
Department of Mechanical Engineering, Pohang University of Science and Technology (POSTECH), Pohang, 37673, Republic of Korea.
POSCO-POSTECH-RIST Convergence Research Center for Flat Optics and Metaphotonics, Pohang, 37673, Republic of Korea.
Microsyst Nanoeng. 2025 Jun 10;11(1):118. doi: 10.1038/s41378-025-00925-3.
Metalenses-two-dimensionally arranged artificial nanostructures that focus light-have been extensively studied due to their great potential for applications in consumer goods and industrial products. However, when metalenses are exposed to harsh environments, they can suffer from mechanical shocks and damage, leading to degradation in optical performance. Here, we present mechanically robust and self-cleanable encapsulated metalenses using spin-on-glass coatings on structured hydrogenated amorphous silicon (a-Si:H), whose optical properties are optimized for effective waveguiding. The atomic structure of a-Si:H has been precisely engineered to achieve a high refractive index (3.23) with near-zero optical losses at the wavelength of 635 nm by adjusting deposition parameters. We develop an analytical model to determine how the refractive index of nanostructures influences light manipulation, highlighting the correlation between refractive indices of structures and metalens efficiencies. Using the high refractive index of the a-Si:H, our encapsulated metalenses achieved a calculated conversion efficiency of 97.2% at the wavelength of 635 nm. Additionally, we verify their mechanical robustness by sonicating encapsulated metalenses with sand for 120 min, demonstrating strong mechanical durability. Furthermore, with the capability of the encapsulated metalenses to perform self-cleaning, this work paves the way for practical applications of metalenses in diverse environments.
超颖透镜——一种二维排列的聚焦光的人工纳米结构——因其在消费品和工业产品中的巨大应用潜力而受到广泛研究。然而,当超颖透镜暴露在恶劣环境中时,它们可能会遭受机械冲击和损坏,导致光学性能下降。在此,我们展示了一种机械坚固且可自清洁的封装超颖透镜,它是在结构化氢化非晶硅(a-Si:H)上使用旋涂玻璃涂层制成的,其光学特性针对有效波导进行了优化。通过调整沉积参数,精确设计了a-Si:H的原子结构,以在635nm波长处实现高折射率(3.23)且光损耗接近零。我们开发了一个分析模型来确定纳米结构的折射率如何影响光操控,突出了结构折射率与超颖透镜效率之间的相关性。利用a-Si:H的高折射率,我们的封装超颖透镜在635nm波长处实现了97.2%的计算转换效率。此外,我们通过用沙子对封装超颖透镜进行120分钟的超声处理来验证其机械坚固性,证明了其强大的机械耐久性。此外,由于封装超颖透镜具有自清洁能力,这项工作为超颖透镜在各种环境中的实际应用铺平了道路。