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用于生物医学应用的 PDMS 上高效的 930nm 薄型 VCSEL。

Highly efficient thin-film 930 nm VCSEL on PDMS for biomedical applications.

机构信息

Department of Electrical and Computer Engineering, Ajou University, Suwon, 16499, South Korea.

RayIR Corporation, LTD, 156 Gwanggyo-ro, Yeongtong-gu, Suwon, 16506, South Korea.

出版信息

Sci Rep. 2023 Jan 11;13(1):571. doi: 10.1038/s41598-023-27589-1.

Abstract

Recently, biocompatible optical sources have been surfacing for new-rising biomedical applications, allowing them to be used for multi-purpose technologies such as biological sensing, optogenetic modulation, and phototherapy. Especially, vertical-cavity surface-emitting laser (VCSEL) is in the spotlight as a prospective candidate for optical sources owing to its low-driving current performance, low-cost, and package easiness in accordance with two-dimensional (2D) arrays structure. In this study, we successfully demonstrated the actualization of biocompatible thin-film 930 nm VCSELs transferred onto a Polydimethylsiloxane (PDMS) carrier. The PDMS feature with biocompatibility as well as biostability makes the thin-film VCSELs well-suited for biomedical applications. In order to integrate the conventional VCSEL onto the PDMS carrier, we utilized a double-transfer technique that transferred the thin-film VCSELs onto foreign substrates twice, enabling it to maintain the p-on-n polarity of the conventional VCSEL. Additionally, we employed a surface modification-assisted bonding (SMB) using an oxygen plasma in conjunction with silane treatment when bonding the PDMS carrier with the substrate-removed conventional VCSELs. The threshold current and maximum output power of the fabricated 930 nm thin-film VCSELs are 1.08 mA and 7.52 mW at an injection current of 13.9 mA, respectively.

摘要

最近,生物相容性的光学光源在新兴的生物医学应用中崭露头角,使它们能够用于多种用途的技术,如生物传感、光遗传学调节和光疗。特别是垂直腔面发射激光器(VCSEL)作为光学光源的潜在候选者备受关注,因为它具有低驱动电流性能、低成本和与二维(2D)阵列结构相适应的封装易用性。在这项研究中,我们成功地展示了将生物相容性的 930nm 薄膜 VCSEL 转移到聚二甲基硅氧烷(PDMS)载体上的实际应用。PDMS 具有生物相容性和生物稳定性,使薄膜 VCSEL 非常适合生物医学应用。为了将传统 VCSEL 集成到 PDMS 载体上,我们使用了双重转移技术,将薄膜 VCSEL 两次转移到外国基板上,从而保持了传统 VCSEL 的 p-on-n 极性。此外,我们在将 PDMS 载体与去除基板的传统 VCSEL 键合时,使用了表面改性辅助键合(SMB)和氧等离子体以及硅烷处理。所制造的 930nm 薄膜 VCSEL 的阈值电流和最大输出功率分别为 1.08mA 和 7.52mW,注入电流为 13.9mA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5fa/9834219/ecbdfa6e0706/41598_2023_27589_Fig1_HTML.jpg

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