Electrical Engineering and Computer Sciences, University of California, Berkeley, Berkeley, CA 94720, USA.
Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.
Sci Adv. 2023 Apr 21;9(16):eadg1607. doi: 10.1126/sciadv.adg1607. Epub 2023 Apr 19.
Miniaturized, multicolored light-emitting device arrays are promising for applications in sensing, imaging, computing, and more, but the range of emission colors achievable by a conventional light-emitting diode is limited by material or device constraints. In this work, we demonstrate a highly multicolored light-emitting array with 49 different, individually addressable colors on a single chip. The array consists of pulsed-driven metal-oxide-semiconductor capacitors, which generate electroluminescence from microdispensed materials spanning a diverse range of colors and spectral shapes, enabling facile generation of arbitrary light spectra across a broad wavelength range (400 to 1400 nm). When combined with compressive reconstruction algorithms, these arrays can be used to perform spectroscopic measurements in a compact manner without diffractive optics. As an example, we demonstrate microscale spectral imaging of samples using a multiplexed electroluminescent array in conjunction with a monochrome camera.
微型化、多色发光器件阵列在传感、成像、计算等领域有广泛的应用前景,但传统发光二极管的发射颜色范围受到材料或器件限制。在这项工作中,我们展示了一种高度多色的发光阵列,在单个芯片上实现了 49 种不同的、可单独寻址的颜色。该阵列由脉冲驱动的金属氧化物半导体电容器组成,这些电容器从微分配材料中产生电致发光,这些材料涵盖了广泛的颜色和光谱形状,从而可以轻松地在宽波长范围内(400 至 1400nm)产生任意光谱。当与压缩重建算法结合使用时,这些阵列可以在没有衍射光学元件的情况下以紧凑的方式进行光谱测量。例如,我们使用多路复用电致发光阵列结合单色相机演示了微尺度光谱成像。