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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Structural, Electronic, and Transport Properties of Hybrid SrTiO3-Graphene and Carbon Nanoribbon Interfaces
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Structural, Electronic, and Transport Properties of Hybrid SrTiO3-Graphene and Carbon Nanoribbon Interfaces

机译:杂交SRTIO 3 型术和碳纳米布孔界面的结构,电子和传输性能

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Hybrid materials composed of different functional structural units offer the possibility of tuning both the thermal and electronic properties of a material independently. Using quantum mechanical calculations, we investigate the change in the electronic and thermoelectric transport properties of graphene and hydrogen-terminated carbon nanoribbons (CNRs) when these are placed on the SrTiO3 (001) surface (STO). We predict that both p-type and n-type composite materials can be achieved by coupling graphene/CNR to different surface terminations of STO. We show that the electronic properties of graphene and CNR are significantly altered on SrO-terminated STO but are preserved upon interaction with TiO2-terminated STO and that CNRs possess distinct electronic states around the Fermi level because of their quasi-one-dimensional nature, leading to a calculated Seebeck coefficient much higher than that of a pristine graphene sheet. Moreover, our calculations reveal that in the TiO2-SrTiO3/CNR system there is a favorable electronic level alignment between the CNR and STO, where the highest occupied molecular orbital of the CNR is positioned in the middle of the STO band gap, resembling n-type doping of the substrate. Our results offer design principles for guiding the engineering of future hybrid thermoelectric materials and, more generally, nanoelectronic materials comprising oxide and graphitic components.
机译:由不同的功能结构单元组成的混合材料提供了独立调整材料的热和电子性质的可能性。使用量子力学计算,我们研究了将石墨烯和氢封端的碳纳米布尔(CNRS)的电子和热电传输性能的变化置于SRTIO 3 (001)表面(STO)上时。我们预测P型和N型复合材料可以通过偶联石墨烯/ CNR到STO的不同表面终端来实现。我们表明石墨烯和CNR的电子性质在封端的STO上显着改变,但是在与TiO 2 -Terminated STO的相互作用时保存,并且CNR由于它们而言,CNRS在费米水平周围具有不同的电子状态。准一维性质,导致计算的塞贝克系数远高于原始石墨烯片的系数。此外,我们的计算表明,在TIO 2 -srtio 3 / cnr系统中,CNR和STO之间存在有利的电子电平对准,其中最高占用的分子轨道CNR位于STO带隙的中间,类似于基板的n型掺杂。我们的结果提供了指导未来混合动力热电材料工程的设计原理,更通常是纳米电子材料,包括氧化物和石墨部件。

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