鲁棒和多功能可生物降解的不可克隆防伪标签与多模式光学编码使用蛋白质介导的发光方解石签名

IF 26.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Ziting Wang, Meng Li, Yinghao Fu, Yu Wang, Yanqing Lu
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引用次数: 0

摘要

物理不可克隆功能(puf)通过提供健壮的安全认证和不可复制的加密密钥,正在成为增强信息安全的前沿技术。将可再生和生物相容性材料纳入puf可确保处理安全,与生物系统兼容,并减少对环境的影响。然而,现有的PUF平台努力平衡高编码容量,多样化的加密签名,以及可持续性和生物相容性的多功能。本研究通过在多功能蚕丝蛋白膜上刻印仿生生长方解石,开发出具有多模式编码、多级密钥加密、多重认证操作的全生物材料不可克隆防伪标签。在这个标签中,固有的不可克隆性来自方解石的随机特性,在晶体生长过程中由丝蛋白介导。在丝蛋白的辅助下,将光致发光分子成功地嵌入方解石晶格中,使所得到的平台能够利用荧光模式和双折射进行高容量编码。本设计通过汉明距离和卷积神经网络,使用标准相机和便携式显微镜,方便快捷地进行身份验证。此外,依赖角度的偏振模式能够生成多级密钥,而多光谱荧光信号提供多通道密钥。开发的防伪标签结合了生物降解性,绿色制造,易于认证,高复杂性,低成本,稳健性,模式化和多功能性,为各种应用中的防伪提供了实用和高安全性的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Robust and Versatile Biodegradable Unclonable Anti-Counterfeiting Labels with Multi-Mode Optical Encoding Using Protein-Mediated Luminescent Calcite Signatures

Physical unclonable functions (PUFs) are emerging as a cutting-edge technology for enhancing information security by providing robust security authentication and non-reproducible cryptographic keys. Incorporating renewable and biocompatible materials into PUFs ensures safety for handling, compatibility with biological systems, and reduced environmental impact. However, existing PUF platforms struggle to balance high encoding capacity, diversified encryption signatures, and versatile functionalities with sustainability and biocompatibility. Here, all-biomaterial-based unclonable anti-counterfeiting labels featuring multi-mode encoding, multi-level cryptographic keys, and multiple authentication operations are developed by imprinting biomimetic-grown calcites on versatile silk protein films. In this label, the inherent non-clonability comes from the randomized characteristics of calcites, mediated by silk protein during crystal growth. The successful embedding of photoluminescent molecules into calcite lattices, assisted by silk protein, allows the resulting platform to utilize fluorescence patterns alongside birefringence for high-capacity encoding. This design facilitates easy and rapid authentication through Hamming distance and convolutional neural networks using standard cameras and portable microscopes. Moreover, angle-dependent polarization patterns enable multi-level key generation, while multi-spectral fluorescence signals offer multi-channel keys. The developed anti-counterfeiting labels combine biodegradability, green manufacture, easy authentication, high-level complexity, low cost, robustness, patternability, and versatility, offering a practical and high-security solution to combat counterfeiting across various applications.

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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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