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用于高效反射式彩色滤光片的由量子点和薄膜谐振腔构成的荧光增强光学谐振器。

Fluorescence Enhanced Optical Resonator Constituted of Quantum Dots and Thin Film Resonant Cavity for High-Efficiency Reflective Color Filter.

作者信息

Chen Xiaochuan, Liang Pengxia, Wu Qian, Tan Qiaofeng, Dong Xue

机构信息

State Key Laboratory of Precision Measurement Technology and Instruments, Department of Precision Instrument, Tsinghua University, Beijing 100084, China.

BOE Technology Group Co., Ltd., Beijing 100176, China.

出版信息

Nanomaterials (Basel). 2021 Oct 23;11(11):2813. doi: 10.3390/nano11112813.

Abstract

Conventional color filters selectively absorb a part of the backlight while reflecting or transmitting other light, resulting in the problem of low efficiency and energy wasting. For this problem, a new concept of fluorescence enhanced optical resonator was proposed and verified in this paper. The new structure consists of structural color filter and light-conversion material. Specially, a thin film resonant cavity was designed, and InP/ZnSe/ZnS quantum dots were inserted inside the resonator. When illuminated by sunlight, the novel fluorescence enhanced optical resonator could not only reflect the specific light, but also convert absorbed energy into desired light, leading to the utilization efficiency improvement of solar energy. An all-dielectric red fluorescence enhanced optical resonator was fabricated, with peak equivalent reflectance up to 105%. Compared with a thin film resonator, the enhancement coefficient of the as-proposed structure is about 124%. The new optical structure can utilize solar source efficiently, showing application potential as the next generation of reflective color filters for display.

摘要

传统的彩色滤光片在反射或透射其他光的同时会选择性地吸收一部分背光源,从而导致效率低下和能量浪费的问题。针对这一问题,本文提出并验证了一种新型的荧光增强光学谐振器概念。这种新结构由结构彩色滤光片和光转换材料组成。具体而言,设计了一个薄膜谐振腔,并在谐振腔内插入了InP/ZnSe/ZnS量子点。当受到太阳光照射时,这种新型的荧光增强光学谐振器不仅能够反射特定的光,还能将吸收的能量转换为所需的光,从而提高太阳能的利用效率。制备了一种全介质红色荧光增强光学谐振器,其峰值等效反射率高达105%。与薄膜谐振器相比,所提出结构的增强系数约为124%。这种新型光学结构能够高效利用太阳能,作为下一代显示用反射式彩色滤光片具有应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad0e/8619847/d40fb5d198a3/nanomaterials-11-02813-g001.jpg

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