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Effect of electrophilic substitution and destructive quantum interference on the thermoelectric performance in molecular devices

机译:电泳取代和破坏性量子干扰对分子装置热电性能的影响

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摘要

Using density function theory combined with the non-equilibrium Green's function method, the thermoelectric properties of para-Xylene-based molecular devices are investigated. It is found that destructive quantum interference can be triggered in n-type of para-connected paraXylene-based molecular device and can obviously enhance the thermoelectric performance of the devices. Moreover, bridge atom electrophilic substitution can significantly improve the thermoelectric properties of p-type monolayer molecular device. The ZT value of p-type monolayer molecular device with doped electrodes can be optimized to 2.2 at 300 K and 2.8 at 500 K, and n-type bilayer molecular device can achieve the value of 1.2 at 300K and 2.0 at 500 K. These results offer the information to design the complete molecular thermoelectric device with p-type and n-type of components and to promote the thermoelectric properties of bilayer molecular junctions by employing destructive quantum interference effects.
机译:利用密度函数理论与非平衡绿色的功能方法相结合,研究了对二甲苯的分子装置的热电性能。 发现破坏性量子干扰可以在N型基于对基的基亚亚烷基的分子装置中触发,并且可以显然可以提高器件的热电性能。 此外,桥梁原子亲电子取代可以显着提高p型单层分子装置的热电性能。 具有掺杂电极的p型单层分子装置的Zt值可以优化至300k和2.8,在500k,n型双层分子装置可以在500k下达到300k和2.0的值。这些结果 提供具有p型和n型组分的完整分子热电装置的信息,并通过采用破坏性量子干扰效应来促进双层分子连接的热电性能。

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