Krasnov Pavel, Ivanova Victoria, Klyamer Darya, Bonegardt Dmitry, Fedorov Aleksandr, Basova Tamara
International Research Center of Spectroscopy and Quantum Chemistry, Siberian Federal University, 26 Kirensky St., 660074 Krasnoyarsk, Russia.
Qingdao Innovation and Development Center, Harbin Engineering University, 1777 Sansha St., Huangdao Dist., Qingdao 266500, China.
Sensors (Basel). 2024 Dec 30;25(1):149. doi: 10.3390/s25010149.
This paper presents the results of quantum-chemical modeling performed by the Density Functional-Based Tight Binding (DFTB) method to investigate the change in the band structure of hybrid materials based on carbon nanotubes and unsubstituted, tetra-, or octa-halogen-substituted zinc phthalocyanines upon the adsorption of ammonia molecules. The study showed that the electrical conductivity of these materials and its changes in the case of interaction with ammonia molecules depend on the position of the impurity band formed by the orbitals of macrocycle atoms relative to the forbidden energy gap of the hybrids. The sensor response of the hybrids containing halogenated phthalocyanines was lower by one or two orders of magnitude, depending on the number of substituents, compared to the hybrid with unsubstituted zinc phthalocyanine. This result was obtained by calculations performed using the nonequilibrium Green's functions (NEGF) method, which demonstrated a change in the electrical conductivity of the hybrids upon the adsorption of ammonia molecules. The analysis showed that in order to improve the sensor characteristics of CNT-based hybrid materials, preference should be given to those phthalocyanines in which substituents contribute to an increase in HOMO energy relative to the unsubstituted macrocycles.
本文介绍了采用基于密度泛函的紧束缚(DFTB)方法进行量子化学建模的结果,以研究基于碳纳米管和未取代、四卤代或八卤代锌酞菁的杂化材料在吸附氨分子后能带结构的变化。研究表明,这些材料的电导率及其与氨分子相互作用时的变化取决于由大环原子轨道形成的杂质带相对于杂化材料禁带的位置。与含有未取代锌酞菁的杂化材料相比,含有卤代酞菁的杂化材料的传感器响应根据取代基数量降低了一个或两个数量级。该结果是通过使用非平衡格林函数(NEGF)方法进行的计算获得的,该方法证明了氨分子吸附后杂化材料电导率的变化。分析表明,为了改善基于碳纳米管的杂化材料的传感器特性,应优先选择那些取代基相对于未取代大环有助于提高HOMO能量的酞菁。