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Dominance of broken bonds and nonbonding electrons at the nanoscale

机译:纳米级断裂的键和非键电子的优势

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摘要

Although they exist ubiquitously in human bodies and our surroundings, the impact of nonbonding lone electrons and lone electron pairs has long been underestimated. Recent progress demonstrates that: (i) in addition to the shorter and stronger bonds between under-coordinated atoms that initiate the size trends of the otherwise constant bulk properties when a substance turns into the nanoscale, the presence of lone electrons near to broken bonds generates fascinating phenomena that bulk materials do not demonstrate; (ii) the lone electron pairs and the lone pair-induced dipoles associated with C, N, O, and F tetrahedral coordination bonding form functional groups in biological, organic, and inorganic specimens. By taking examples of surface vacancy, atomic chain end and terrace edge states, catalytic enhancement, conducting-insulating transitions of metal clusters, defect magnetism, Coulomb repulsion at nanoscale contacts, Cu3C2H2 and Cu3O2 surface dipole formation, lone pair neutralized interface stress, etc, this article will focus on the development and applications of theory regarding the energetics and dynamics of nonbonding electrons, aiming to raise the awareness of their revolutionary impact to the society. Discussion will also extend to the prospective impacts of nonbonding electrons on mysteries such as catalytic enhancement and catalysts design, the density anomalies of ice and negative thermal expansion, high critical temperature superconductivity induced by B, C, N, O, and F, the molecular structures and functionalities of CF4 in anti-coagulation of synthetic blood, NO signaling, and enzyme telomeres, etc. Meanwhile, an emphasis is placed on the necessity and effectiveness of understanding the properties of substances from the perspective of bond and nonbond formation, dissociation, relaxation and vibration, and the associated energetics and dynamics of charge repopulation, polarization, densification, and localization. Finding and grasping the factors controlling the nonbonding states and making them of use in functional materials design and identifying their limitations will form, in the near future, a subject area of "nonbonding electronics and energetics", which could be even more challenging, fascinating, promising, and rewarding than dealing with core or valence electrons alone.
机译:尽管它们存在于人体和我们的周围环境中,但长期以来,非键入孤独电子和孤独电子对的影响一直被低估。最近的进展表明:(i)除了在不足协调的原子之间较短,更牢固的键外,这些原子启动了当物质变成纳米级时启动原本恒定散装特性的大小趋势外,在损坏键附近的孤独电子的存在还会产生令人着迷的现象表明散装材料没有证明; (ii)在生物,有机和无机标本中,孤对和孤对诱导的偶极子与C,N,O和F四面体配位键键组相关。通过以表面空位,原子链端和露台边缘状态为例,催化增强,金属簇的导电绝不能进行,缺陷磁力,纳米级触点的库仑抑制作用,cu3c2h2和cu3o2表面偶极子等,唯一的中性界面压力等,孤独本文将重点介绍有关非键入电子的能量和动态理论的发展和应用,旨在提高对社会革命性影响的认识。讨论还将扩展到非构型电子对诸如催化增强和催化剂设计,冰和阴性热膨胀的密度异常,高临界温度超导性的高度异常,由B,C,C,N,O和F,分子诱导的高临界温度超导性, CF4在合成血,没有信号传导和酶端粒等抗凝凝结中的结构和功能。与此同时,重点是从键和非基本形成,离解,离解,离心,解离,解离,离子的角度的角度理解物质的必要性和有效性。放松和振动,以及电荷重新构造,极化,致密化和定位的相关能量和动力学。在不久的将来,发现并抓住控制非键状态并使它们在功能材料设计中使用并确定其局限性的因素将形成一个“非键入电子和能量学”的主题领域,这可能更具挑战性,令人着迷,令人着迷,更具吸引力,令人着迷,有前途的,比单独处理核心或价电子的有益。

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