Sukserm Akkarach, Ceppatelli Matteo, Serrano-Ruiz Manuel, Scelta Demetrio, Dziubek Kamil, Morana Marta, Bini Roberto, Peruzzini Maurizio, Bovornratanaraks Thiti, Pinsook Udomsilp, Scandolo Sandro
Extreme Conditions Physics Research Laboratory and Center of Excellence in Physics of Energy Materials(CE:PEM), Department of Physics, Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand.
Thailand Center of Excellence in Physics, Ministry of Higher Education, Science, Research and Innovation, 328 Si Ayutthaya Road, Bangkok 10400, Thailand.
Inorg Chem. 2024 May 6;63(18):8142-8154. doi: 10.1021/acs.inorgchem.4c00342. Epub 2024 Apr 19.
The covalent bonding framework of crystalline single-bonded cubic AsN, recently synthesized under high pressure and high temperature conditions in a laser-heated diamond anvil cell, is here studied by means of density functional theory calculations and compared to single crystal X-ray diffraction data. The precise localization of the nonbonding electron lone pairs and the determination of their distances and orientations are related to the presence of characteristic structural motifs and space regions of the unit cell dominated by repulsive electronic interactions, with the relative orientation of the electron lone pairs playing a key role in minimizing the energy of the structure. We find that the vibrational modes associated with the expression of the lone pairs are strongly localized, an observation that may have implications for the thermal conductivity of the compound. The results indicate the thermodynamic stability of the experimentally observed structure of AsN above ∼17 GPa, provide a detailed insight into the nature of the chemical bonding network underlying the formation of this compound, and open new perspectives to the design and high pressure synthesis of new pnictogen-based advanced materials for potential applications of energetic and technological relevance.
最近在激光加热金刚石砧盒中通过高温高压条件合成的晶体单键立方砷化氮(AsN)的共价键框架,在此通过密度泛函理论计算进行研究,并与单晶X射线衍射数据进行比较。非键合电子孤对的精确定位及其距离和取向的确定与特征结构基序的存在以及由排斥电子相互作用主导的晶胞空间区域有关,电子孤对的相对取向在使结构能量最小化方面起着关键作用。我们发现与孤对表达相关的振动模式强烈局域化,这一观察结果可能对该化合物的热导率有影响。结果表明,在约17 GPa以上,实验观察到的AsN结构具有热力学稳定性,深入了解了该化合物形成背后化学键网络的性质,并为设计和高压合成具有能量和技术相关性潜在应用的新型基于氮族元素的先进材料开辟了新的前景。