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通过浓度依赖型光开关实现自给自足分子组装的存储元件和数据安全平台:氨基脲席夫碱的潜在特性

Memory Element and Data Security Platforms Using Self-Sufficient Molecular Assembly Through Concentration Reliant Photo-Switching: A Latent Trait of Semicarbazone Schiff Base.

作者信息

Chattopadhyay Subham, Singh Piyush, Das Subham, Ghosh Sujit Kumar

机构信息

Department of Chemistry, Visvesvaraya National Institute of Technology, Nagpur, South Ambazari Road, Nagpur, 440010, Maharashtra, India.

出版信息

J Fluoresc. 2025 Sep 3. doi: 10.1007/s10895-025-04524-3.

Abstract

Logic operations at the molecular level are anticipated to play key role in data processing and storage in the future. However, most of these chemical systems rely on foreign chemical inputs. In contrast, opto-chemical logic devices are simpler to implement due to the ease of optical changes compared to pure chemical ones. In this work, a semicarbazone Schiff base derivative (E)-2-(4-(diethylamino)-2-hydroxybenzylidene)hydrazine-1-carboxamide (DHHC) has been developed as a photo-switch, enabling the design of multifunctional logic systems, most importantly, independent of foreign chemical inputs. The mechanism operates based on the concentration-driven optical properties of DHHC, where native inputs, such as methanol and DHHC itself, influence its optical behaviour by altering system concentrations. As confirmed by 2D contour plots, the distinct emission profiles of lower and higher concentrations of DHHC are strictly governed by their respective excitations. These self-sufficient optical properties of DHHC were leveraged to design several interconvertible simple and complex logic gates, including INHIBIT and IMPLICATION gates. Additionally, the photo-switching ability of DHHC was utilized to generate a memory device with a feedback loop mechanism, with methanol and DHHC acting as "reset" and "set" conditions, respectively, demonstrating an infinitely recyclable "Erase-Read-Write-Read" memory function. The fluorescence responses of DHHC were also employed to develop two potentially highly secured molecular keypad pattern locks, functioning with purely opto-chemical passwords. This work showcases the hidden potential of a light-responsive Schiff base as a multifunctional, reconfigurable molecular logic device, advancing the development of molecular data processing and data security elements.

摘要

分子水平的逻辑运算有望在未来的数据处理和存储中发挥关键作用。然而,这些化学系统大多依赖外部化学输入。相比之下,光化学逻辑器件由于与纯化学器件相比光学变化更容易实现,因而更易于实施。在这项工作中,一种氨基脲席夫碱衍生物(E)-2-(4-(二乙氨基)-2-羟基苄叉基)肼-1-甲酰胺(DHHC)已被开发为一种光开关,能够设计多功能逻辑系统,最重要的是,独立于外部化学输入。该机制基于DHHC的浓度驱动光学特性运行,其中甲醇和DHHC本身等原生输入通过改变系统浓度来影响其光学行为。正如二维等高线图所证实的,较低和较高浓度的DHHC的不同发射光谱严格受其各自激发的支配。DHHC的这些自给自足的光学特性被用于设计几个可相互转换的简单和复杂逻辑门,包括禁止门和蕴含门。此外,DHHC的光开关能力被用于生成一种具有反馈回路机制的存储器件,甲醇和DHHC分别作为“复位”和“设置”条件,展示了无限可循环的“擦除-读取-写入-读取”存储功能。DHHC的荧光响应还被用于开发两种潜在的高度安全的分子键盘图案锁,通过纯光化学密码运行。这项工作展示了一种光响应席夫碱作为多功能、可重构分子逻辑器件的潜在价值,推动了分子数据处理和数据安全元件的发展。

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