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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Interactions of hydrogen with Pd and Pd/Ni alloy chain-functionalized single walled carbon nanotubes from density functional theory
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Interactions of hydrogen with Pd and Pd/Ni alloy chain-functionalized single walled carbon nanotubes from density functional theory

机译:基于密度泛函理论的氢与Pd和Pd / Ni合金链功能化单壁碳纳米管的相互作用

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Density functional theory is employed to study Pd and Pd/Ni alloy monatomic chain-functionalized metallic single walled carbon nanotubes(SWNT(6,6)) and semiconducting SWNT(10,0), and their interactions with hydrogen molecules. The stable geometries and binding energies have been determined for both isolated chains and chains on SWNT surfaces. We found that continuous Pd and Pd/Ni chains form on SWNTs with geometries close to stable geometries in the isolated chains. Ni alloying improves stability of the chains owing to a higher binding energy to both Pd and C atoms. The physical properties of SWNTs are significantly modified by chain functionalization. SWNT(10,0) is transformed to metal by either Pd or alloy chains, or to a smaller band gap semiconductor, depending on the Pd binding site. From calculations for H-2 interactions with the optimized chain-SWNT systems, the adsorption energy per H atom is found to be about 2.6 times larger for Pd/Ni chain-functionalized SWNTs than for pure Pd chain-functionalized SWNTs. Band structure calculations show that the SWNT(10,0) reverts back to semiconductor and SWNT(6,6) has reduced density of states at the Fermi level upon H-2 adsorption. This result is consistent with the experimentally observed increase of electrical resistance when Pd-coated SWNTs are used as H-2 sensing materials. Finally, our results suggest that Pd/Ni-SWNT materials are potentially good H-2-sensing materials.
机译:利用密度泛函理论研究了Pd和Pd / Ni合金单原子链官能化金属单壁碳纳米管(SWNT(6,6))和半导体SWNT(10,0)及其与氢分子的相互作用。对于孤立的链和单壁碳纳米管表面的链,已经确定了稳定的几何形状和结合能。我们发现连续的Pd和Pd / Ni链在单壁碳纳米管上形成,其几何形状接近孤立链中的稳定几何形状。 Ni合金化由于对Pd和C原子具有更高的结合能而提高了链的稳定性。单链碳纳米管的物理性质通过链功能化得到显着改变。根据Pd的结合位点,SWNT(10,0)通过Pd或合金链转变为金属,或者转变为较小的带隙半导体。从与优化链SWNT系统进行的H-2相互作用计算,发现Pd / Ni链功能化SWNT的每个H原子的吸附能比纯Pd链功能化SWNT的约2.6倍。能带结构计算表明,SWNT(10,0)还原为半导体,SWNT(6,6)在H-2吸附后,在费米能级下的态密度降低。该结果与当涂钯的SWNTs用作H-2传感材料时,实验观察到的电阻增加是一致的。最后,我们的结果表明,Pd / Ni-SWNT材料可能是良好的H-2传感材料。

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