材料科学
复合材料
韧性
建筑集成光伏
表征(材料科学)
弹性(材料科学)
断裂韧性
织物
光伏
光伏系统
透射率
桥接(联网)
耐久性
涂层
断裂力学
断裂(地质)
丝绸
压力(语言学)
太阳能
能量转换效率
光散射
纳米尺度
损伤容限
高效能源利用
散射
脆性
纳米材料
增韧
分路器
各向异性
薄膜
高能
作者
Haotian Yu,Kang Yang,Chen Zhang,L H Zhao,Zeping Hu,Juan Guan,Jingwu Zhang,Tingji Ma,Jing Ren,Shengjie Ling,Zhengzhong Shao
摘要
ABSTRACT Transparent and impact‐resistant films are critical for applications ranging from architecture and transportation to photovoltaics and optoelectronics. Yet conventional glass and petroleum‐based plastics suffer from brittleness, limited optical‐mechanical synergy, and sustainability challenges. Here we present transparent silk fabric/epoxy composites (TSCs), fabricated by refractive‐index matching, pore infiltration, and interfacial densification through an integrated VARTM‐hot‐press process. Thus, the TSCs offer high transmittance (up to 90%) and tunable haze (0.04–43%). With a fracture energy of 166 kJ m − 2 and a fracture toughness of 25.5 MPa·m 1/2 , they demonstrate exceptional toughness, surpassing known transparent materials. Multiscale characterization and finite‐element analysis reveal synergistic toughening mechanisms including crack deflection, fiber bridging, and stress redistribution. Beyond mechanical reinforcement, the woven scaffold imparts anisotropic forward scattering that enables tunable light‐field shaping, enhancing illumination uniformity and photovoltaic harvesting. Device‐level tests confirm improved power conversion efficiency (∼10.5% relative gain) and stable charging in practical scenarios, while durability studies demonstrate long‐term stability under water, UV, mechanical, and soil conditions. Together, these results identify TSCs as scalable, sustainable alternatives to glass and plastics, bridging the transparency‐toughness trade‐off and offering new opportunities for light management in next‐generation energy and infrastructure systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI