释放潜力:三氮唑在当代科学中的结构奇迹和多种应用。

IF 7.1 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Ayushi Bhatnagar, Rajendra Prasad Pakhariya, Gangotri Pemawat
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引用次数: 0

摘要

三唑是一类令人着迷的含氮杂环化合物,在当代化学中已成为关键角色,因其独特的多功能性和广泛的应用而引起了人们的极大关注。它们已成为现代化学的基本组成部分,在多个应用领域表现出卓越的适应性。人工智能(AI)驱动的药物化学药物发现加速了寻找具有更高治疗潜力的生物活性三唑衍生物的过程。绿色化学技术,如无金属协议、离子液体介导合成和点击化学,已经改变了它们的合成,保证了可持续性、有效性和低环境影响。除了制药行业,三唑类化合物对下一代材料科学也至关重要,有助于制造防腐涂层、生物传感器和高性能太阳能电池。它们与有机电子和纳米技术的结合,极大地增强了能量存储系统、保护涂层和传感器灵敏度,从而在几个行业带来了革命性的突破。随着研究的不断深入,人工智能与环境友好型合成技术的结合拓宽了三唑的应用范围,确认了它们作为科技进步必不可少的助推器的地位。这些进步不仅简化了三唑衍生物的创造,而且扩大了它们的应用范围,推动了多个领域的研究和开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unlocking the Potential: The Structural Wonders and Diverse Applications of Triazoles in Contemporary Science.

Triazoles, a captivating class of nitrogen-containing heterocyclic compounds, have emerged as pivotal players in contemporary chemistry, drawing significant attention for their exceptional versatility and wide-ranging applications. They have become essential building blocks in modern chemistry, exhibiting remarkable adaptability in a multiple areas of utility. Artificial intelligence (AI)-driven drug discovery in medicinal chemistry has sped up the process of finding bioactive triazole derivatives with improved therapeutic potential. Green chemistry techniques, such as metal-free protocols, ionic liquid-mediated synthesis, and click chemistry, have transformed their synthesis, which guarantees sustainability, effectiveness, and low environmental impact. Beyond the pharmaceutical industry, triazoles are essential to next-generation material science, helping to create anticorrosion coatings, biosensors, and high-performance solar cells. Their incorporation into organic electronics and nanotechnology has led to revolutionary breakthroughs in several industries by greatly enhancing energy storage systems, protective coatings, and sensor sensitivity. As studies continue, combining artificial intelligence and environmentally friendly synthesis techniques broadens the range of triazole applications, confirming their position as essential facilitators of scientific and technological advancement. These advancements not only streamline the creation of triazole derivatives but also expand the scope of their applications, propelling research and development across multiple domains.

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来源期刊
Topics in Current Chemistry
Topics in Current Chemistry Chemistry-General Chemistry
CiteScore
13.70
自引率
1.20%
发文量
48
期刊介绍: Topics in Current Chemistry is a journal that presents critical reviews of present and future trends in modern chemical research. It covers all areas of chemical science, including interactions with related disciplines like biology, medicine, physics, and materials science. The articles in this journal are organized into thematic collections, offering a comprehensive perspective on emerging research to non-specialist readers in academia or industry. Each review article focuses on one aspect of the topic and provides a critical survey, placing it in the context of the collection. Selected examples highlight significant developments from the past 5 to 10 years. Instead of providing an exhaustive summary or extensive data, the articles concentrate on methodological thinking. This approach allows non-specialist readers to understand the information fully and presents the potential prospects for future developments.
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