材料科学
数码产品
透明度(行为)
光子学
超材料
光学透明度
纳米技术
计算机科学
计算机体系结构
折射率
块(置换群论)
嵌入式系统
现场可编程门阵列
光学工程
网络拓扑
二硫键
热的
瞬态(计算机编程)
工程类
集成光学
热稳定性
柔性电子器件
作者
Wei Fan,Ruirui Xing,Peng Zhou,Guizhi Shen,Shuai Cao,Chengqian Yuan,Xuehai Yan
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-09-21
卷期号:64 (45): e202517982-e202517982
被引量:7
标识
DOI:10.1002/anie.202517982
摘要
Glass has served as a cornerstone of modern civilization due to its exceptional optical transparency and structural integrity. Yet, its static covalent/ionic network fundamentally restricts environmental adaptability, presenting a critical challenge for next-generation sustainable technologies. Here, we report a programmable, bio-derived noncovalent glass (BNG) engineered through multivalent, reconfigurable H-bonding networks composed of natural building blocks (e.g., amino acids, peptides, biomacromolecules) and organic acids with multiple H-bond donors and acceptors. Molecular programming of these networks enables unprecedented four-dimensional control: hydration-tunable mechanical stiffness, amino acid-guided refractive index modulation, humidity/temperature-activated self-healing, and closed-loop aqueous recyclability. This molecularly encoded programmability distinguishes BNG from conventional smart materials, which typically rely on single stimulus-response modes. Critically, the configurability of H-bonding network further endows BNG with versatile processability (e.g., 3D printing, thermal pressing, and mold-casting) for functional architectures. Moreover, the programmable disassembly allows seamless integration into transient electronics as an energy-efficient alternative to energy-intensive glass recycling. By leveraging naturally abundant, metabolically benign building blocks, BNG establishes a sustainable paradigm for adaptive soft electronics and circular packaging-transforming glass from a passive structural medium to a dynamically programmable material.
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