Arfin Rishad, Niegemann Jens, McGuire Dylan, Bakr Mohamed H
Department of Electrical & Computer Engineering, McMaster University, Hamilton, ON L8S 4K1, Canada.
Ansys Canada Ltd., 1700-1095 West Pender Street, Vancouver, BC V6E 2M6, Canada.
Sensors (Basel). 2024 Nov 30;24(23):7693. doi: 10.3390/s24237693.
Recently, there have been significant developments in the designs of CMOS image sensors to achieve high-resolution sensing capabilities. One of the fundamental factors determining the sensor's ability to capture high-resolution images is its efficiency in focusing the visible light onto the photosensitive region of the submicron scale. In most CMOS imaging technologies, this is typically achieved through microlenses. Light collection under diverse conditions can be significantly improved through the efficient design of microlenses. While the optimization of microlenses appears to be imperative, achieving efficient designs of microlenses for high-density pixels under various conditions remains a significant challenge. Therefore, a systematic optimization approach is required to accelerate the development of efficient microlenses with enhanced optical performance. In this paper, we present an approach to optimize the shape of CMOS microlenses through adjoint sensitivity analysis (ASA). A novel figure of merit (FOM) is developed and incorporated into the optimization process to enhance the light collection. The gradient of the FOM is computed iteratively using two field simulations only. The functionality and robustness of the optimization framework are thoroughly evaluated. Furthermore, the performance of the optimized CMOS microlenses is compared to that of the conventional microlenses. The adjoint-assisted optimization framework presented here can be further used to develop efficient optical devices that perform optical manipulation such as concentrating, bending, or dispersing light in compact imaging systems.
最近,CMOS图像传感器的设计取得了重大进展,以实现高分辨率传感能力。决定传感器捕获高分辨率图像能力的一个基本因素是其将可见光聚焦到亚微米尺度的光敏区域的效率。在大多数CMOS成像技术中,这通常是通过微透镜实现的。通过微透镜的高效设计,可以显著提高在各种条件下的光收集效率。虽然微透镜的优化似乎势在必行,但在各种条件下为高密度像素实现微透镜的高效设计仍然是一个重大挑战。因此,需要一种系统的优化方法来加速具有增强光学性能的高效微透镜的开发。在本文中,我们提出了一种通过伴随灵敏度分析(ASA)来优化CMOS微透镜形状的方法。开发了一种新的品质因数(FOM)并将其纳入优化过程以增强光收集。仅使用两个场模拟就可以迭代计算FOM的梯度。对优化框架的功能和鲁棒性进行了全面评估。此外,将优化后的CMOS微透镜的性能与传统微透镜的性能进行了比较。本文提出的伴随辅助优化框架可进一步用于开发在紧凑型成像系统中执行诸如聚焦、弯曲或分散光等光学操作的高效光学器件。