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增强用于太阳能热电池的双环二烯光开关热光性能的新途径。

Novel route to enhance the thermo-optical performance of bicyclic diene photoswitches for solar thermal batteries.

作者信息

Sangolkar Akanksha Ashok, Kadiyam Rama Krishna, Pawar Ravinder

机构信息

Laboratory of Advanced Computation and Theory for Materials and Chemistry, Department of Chemistry, National Institute of Technology Warangal (NITW), Warangal, Telangana-506004, India.

出版信息

Beilstein J Org Chem. 2024 May 13;20:1053-1068. doi: 10.3762/bjoc.20.93. eCollection 2024.

Abstract

Harnessing solar energy by employing chemical photoswitches in molecular solar thermal (MOST) energy storage systems is a topic of appealing research interest. However, incorporating all the features desired for an ideal MOST system in a single photoswitching couple is challenging. Inspired by experimental synthesis, herein we report our attempt to enhance both the thermochemical and photophysical properties in a single-bridged bicyclic diene (BBD)-based photoswitch by elongating the unsaturated bridge with different heteroatomic units. To elucidate the best elongation unit, the energy storage capacity and the TBR barriers were accounted using the DLPNO-CCSD(T) and (8,8)-CASPT2 methods, respectively. The photophysical properties including the absorption onset, excitation wavelengths, and the absorption intensities were extensively investigated with the time-dependent calculations. The result provides information on the most versatile solvent to exhibit the best photoswitching behaviour which is beneficial for real-life energy storage applications. Additionally, the stability and reversibility of the photoswitching system with elongated unsaturated bridges have also been assessed. By means of the studied modification, the storage energy of 158.57 kJ/mol, energy storage density of 1.48 MJ/kg, TBR barrier of 136.36 kJ/mol, and the absorption onset of 305.00 nm is achieved in acetonitrile. These values are substantially higher when compared with the storage energy (96.06 kJ/mol), energy storage density (1.04 MJ/kg), and TBR barrier (121.76 kJ/mol) of prototype NBD/QC in the gas phase. The outcomes render useful insights into the stability and properties of bicyclic diene-based photoswitches having elongated unsaturated bridges and indeed paves the way for the rational design of practical MOST systems.

摘要

在分子太阳能热(MOST)储能系统中利用化学光开关来 harnessing太阳能是一个具有吸引力的研究热点。然而,在单个光开关对中纳入理想MOST系统所需的所有特性具有挑战性。受实验合成的启发,在此我们报告了通过用不同的杂原子单元延长不饱和桥来增强基于单桥双环二烯(BBD)的光开关的热化学和光物理性质的尝试。为了阐明最佳的延长单元,分别使用DLPNO-CCSD(T)和(8,8)-CASPT2方法计算储能容量和TBR势垒。通过含时计算广泛研究了包括吸收起始波长、激发波长和吸收强度在内的光物理性质。结果提供了关于最通用溶剂以展现最佳光开关行为的信息,这有利于实际的储能应用。此外,还评估了具有延长不饱和桥的光开关系统的稳定性和可逆性。通过所研究的修饰,在乙腈中实现了158.57 kJ/mol的储能、1.48 MJ/kg的储能密度、136.36 kJ/mol的TBR势垒和305.00 nm的吸收起始波长。与气相中原型NBD/QC的储能(96.06 kJ/mol)、储能密度(1.04 MJ/kg)和TBR势垒(121.76 kJ/mol)相比,这些值显著更高。这些结果为具有延长不饱和桥的双环二烯基光开关的稳定性和性质提供了有用的见解,确实为实用MOST系统的合理设计铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd14/11106670/9c69464f6284/Beilstein_J_Org_Chem-20-1053-g002.jpg

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