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4D-MISR: A unified model for low-dose super-resolution imaging via feature fusion

4D-MISR: A unified model for low-dose super-resolution imaging via feature fusion

来源:Arxiv_logoArxiv
英文摘要

While electron microscopy offers crucial atomic-resolution insights into structure-property relationships, radiation damage severely limits its use on beam-sensitive materials like proteins and 2D materials. To overcome this challenge, we push beyond the electron dose limits of conventional electron microscopy by adapting principles from multi-image super-resolution (MISR) that have been widely used in remote sensing. Our method fuses multiple low-resolution, sub-pixel-shifted views and enhances the reconstruction with a convolutional neural network (CNN) that integrates features from synthetic, multi-angle observations. We developed a dual-path, attention-guided network for 4D-STEM that achieves atomic-scale super-resolution from ultra-low-dose data. This provides robust atomic-scale visualization across amorphous, semi-crystalline, and crystalline beam-sensitive specimens. Systematic evaluations on representative materials demonstrate comparable spatial resolution to conventional ptychography under ultra-low-dose conditions. Our work expands the capabilities of 4D-STEM, offering a new and generalizable method for the structural analysis of radiation-vulnerable materials.

Zifei Wang、Zian Mao、Xiaoya He、Xi Huang、Haoran Zhang、Chun Cheng、Shufen Chu、Tingzheng Hou、Xiaoqin Zeng、Yujun Xie

粒子探测技术、辐射探测技术、核仪器仪表光电子技术计算技术、计算机技术

Zifei Wang,Zian Mao,Xiaoya He,Xi Huang,Haoran Zhang,Chun Cheng,Shufen Chu,Tingzheng Hou,Xiaoqin Zeng,Yujun Xie.4D-MISR: A unified model for low-dose super-resolution imaging via feature fusion[EB/OL].(2025-07-14)[2025-07-25].https://arxiv.org/abs/2507.09953.点此复制

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