Department of Chemistry and Chemical Biology, Stevens Institute of Technology, 1 Castle Point Terrace, Hoboken, NJ 07030, USA.
Angew Chem Int Ed Engl. 2022 Nov 7;61(45):e202211450. doi: 10.1002/anie.202211450. Epub 2022 Sep 14.
HNO has broad chemical and biomedical properties. Metal complexes and derivatives are widely used to make excellent HNO sensors. However, their favorable mechanistic origins are largely unknown. Cu cyclam is a useful platform to make excellent HNO sensors including imaging agents. A quantum chemical study of Cu cyclams with various substitutions was performed, which reproduced diverse experimental reactivities. Structural, electronic, and energetic profiles along reaction pathways show the importance of HNO binding and a proton-coupled electron transfer mechanism for HNO reaction. Results reveal that steric effect is primary and electronic factor is secondary (if the redox potential is sufficient), but their interwoven effects can lead to unexpected reactivity, which looks mysterious experimentally but can be explained computationally. This work suggests rational substituent design ideas and recommends a theoretical study of a new design to save time and cost due to its subtle effect.
HNO 具有广泛的化学和生物医学特性。金属配合物和衍生物被广泛用于制造优秀的 HNO 传感器。然而,它们有利的机械起源在很大程度上是未知的。Cu 环戊烷是制造优秀的 HNO 传感器(包括成像剂)的有用平台。对具有各种取代基的 Cu 环戊烷进行了量子化学研究,该研究再现了不同的实验反应性。反应途径中的结构、电子和能量分布表明 HNO 结合和质子耦合电子转移机制对 HNO 反应的重要性。结果表明,空间效应是主要的,电子因素是次要的(如果氧化还原电位足够),但它们交织的影响可能导致意外的反应性,这在实验上看起来很神秘,但可以通过计算来解释。这项工作为合理的取代基设计理念提供了建议,并推荐了一种新设计的理论研究,以节省由于其微妙影响而导致的时间和成本。