Liu Qing Yu, Wu Ying, Bu Zhen Qi, Quan Min Xia, Lu Jiao Yang, Huang Wei Tao
State Key Laboratory of Developmental Biology of Freshwater Fish, Hunan Provincial Key Laboratory of Microbial Molecular Biology, College of Life Science, Hunan Normal University, Changsha, 410081, P. R. China.
Hunan Key Laboratory of the Research and Development of Novel Pharmaceutical Preparations, Academician Workstation, Changsha Medical University, Changsha, 410219, P. R. China.
Small. 2023 Jul;19(29):e2207436. doi: 10.1002/smll.202207436. Epub 2023 Apr 7.
Bimetallic nanomaterials (BNMs) have been used in sensing, biomedicine, and environmental remediation, but their multipurpose and comprehensive applications in molecular logic computing and information security protection have received little attention. Herein, This synthesis method is achieved by sequentially adding reactants under ice bath conditions. Interestingly, Ag-Cr NPs can dynamically selectively sense anions and reductants in multiple channels. Especially, ClO can be quantitatively detected by oxidizing Ag-Cr NPs with detection limits of 98.37 nM (at 270 nm) and 31.83 nM (at 394 nm). Based on sequential-dependent synthesis process of Ag-Cr NPs, Boolean logic gates and customizable molecular keypad locks are constructed by setting the reactants as the inputs, the states of the resulting solutions as the outputs. Furthermore, dynamically selective response patterns of the Ag-Cr NPs can be converted into binary strings to exploit molecular crypto-steganography to encode, store, and hide information. By integrating the three dimensions of authorization, encryption, and steganography, 3 in 1 advanced information protection based on Ag-Cr nanosensing system can be achieved, which can enhance the anti-cracking ability of information. This research will promote the development and application of nanocomposites in the field of information security and deepen the connection between molecular sensing and the information world.
双金属纳米材料(BNMs)已被用于传感、生物医学和环境修复领域,但其在分子逻辑计算和信息安全保护方面的多功能综合应用却很少受到关注。在此,这种合成方法是通过在冰浴条件下依次添加反应物来实现的。有趣的是,Ag-Cr纳米颗粒可以在多个通道中动态选择性地检测阴离子和还原剂。特别是,通过氧化Ag-Cr纳米颗粒可以定量检测ClO,其检测限分别为98.37 nM(在270 nm处)和31.83 nM(在394 nm处)。基于Ag-Cr纳米颗粒的顺序依赖性合成过程,通过将反应物设置为输入,所得溶液的状态设置为输出,构建了布尔逻辑门和可定制的分子键盘锁。此外,Ag-Cr纳米颗粒的动态选择性响应模式可以转换为二进制字符串,以利用分子隐写术对信息进行编码、存储和隐藏。通过整合授权、加密和隐写术这三个维度,可以实现基于Ag-Cr纳米传感系统的三合一高级信息保护,从而提高信息的抗破解能力。这项研究将推动纳米复合材料在信息安全领域的发展和应用,并加深分子传感与信息世界之间的联系。