计算机科学
密码
理论计算机科学
密码学
密文
ASCII码
加密
钥匙(锁)
计算机工程
莫尔斯电码
破译
编码(社会科学)
逻辑门
嵌入式系统
计算机体系结构
接口(物质)
密钥生成
嵌入
和大门
系统集成
编码(集合论)
计算机硬件
作者
Mohamed Nabeel Mattath,Yingying Lu,Ajith Manayil Parambil,Yan Gao,Tian‐Ming Yao,Jie Li,Rui‐Min Zang,Song Hu,Shuo Shi
出处
期刊:Small
[Wiley]
日期:2025-12-30
卷期号:: e13587-e13587
标识
DOI:10.1002/smll.202513587
摘要
ABSTRACT Molecular information coding (MIC) involves biomolecules to encrypt and transmit messages, remains in its early stages of development. This work presents a versatile molecular integration framework and a proof‐of‐concept multi‐level security system that combines Morse code, ASCII code, and Beale's cipher through molecular logic computing, using a molecular dye‐oligonucleotide platform (single‐stranded DNA, duplex DNA, stem‐loop, and G‐quadruplex (G‐4) structures). This study demonstrates the integration of nanotechnology with crypto‐steganographic methods to visualize and decipher codes, embedding elementary logic operations into molecular signal transduction. Additionally, a graphical user interface (GUI) is developed for classifying elementary logic gates using a decision tree algorithm, providing researchers with an accessible tool for rapid prediction. The Morse code‐mediated strategy enables static key generation using dots, dashes, and intervals, and dynamic key generation through a polyalphabetic cipher framework. In parallel, ASCII‐based logic gate operations facilitate multi‐key decryption of decimal values to recover hidden information. Furthermore, a multilayered hybrid cryptographic technique combining Beale's cipher with Morse code implemented via a pangramic codebook, establishes an exceptionally resistant system against brute‐force attacks. These methods provide insights into the evolution of communication and highlight the importance of encryption without relying on highly complex materials or sophisticated instruments.
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