论文标题

通过在双苯基薄片中选择性过渡金属的装饰来增强儿茶酚的传感:系统的第一原理研究

Remarkable enhancement in catechol sensing by the decoration of selective transition metals in biphenylene sheet: A systematic first-principles study

论文作者

Mahamiya, Vikram, Dewangan, Juhee, Shukla, Alok, Chakraborty, Brahmananda

论文摘要

通过最近成功合成二苯基结构[Science 372,(2021),852],我们通过执行第一原质的功能理论和分子动力学模拟,探索了该材料对Catechol Biomolecule的感应特性。原始的双苯基薄片以-0.35 eV的结合能吸附儿茶素分子,可以通过在双苯基烯的各种可能位点进行过渡金属(AG,AU,PD和Ti)来系统地改进。可以观察到,儿茶酚分子被吸附在PD上,并分别具有-1.00 eV和-2.54 eV的Ti装饰的双苯基片。儿茶酚分子与二苯基和金属二苯二苯的相互作用是由于金属二苯基二苯基中的二硫醇分子的O-2P轨道转移到二苯乙醇分子的O-2P轨道到双苯基和双金属的C-2P轨道。从偏差的电荷计算中,我们发现,0.05E的电荷量从儿茶酚分子转移到原始的双苯基,对于Ti装饰的双苯基薄片的含量几乎是两倍(〜0.1E)。通过执行攀岩图像弹性弹性带计算计算得出的PD和Ti原子聚类的扩散能屏障为2.39 eV和4.29 eV。我们发现,即使在100 K处,Catechol分子也从原始的双苯甲酸片上解吸了,但仍在室温下通过AB-Initio Molecular Dynamics模拟在室温下饰有金属(PD,Ti)。二苯甲酸片对儿茶酚的吸附具有更大的敏感性,而PD装饰的双苯基片则在500 K时具有合适的恢复时间。结果表明PD和Ti饰有二苯乙烯片是可邻苯二醇检测的有希望的材料。

Motivated by the recent successful synthesis of biphenylene structure [Science 372, (2021), 852], we have explored the sensing properties of this material towards the catechol biomolecule by performing the first-principles density functional theory and molecular dynamics simulations. Pristine biphenylene sheet adsorbs catechol molecule with a binding energy of -0.35 eV, which can be systematically improved by decorating the transition metals (Ag, Au, Pd, and Ti) at various possible sites of biphenylene. It is observed that the catechol molecule is adsorbed on Pd and Ti-decorated biphenylene sheets with strong adsorption energies of -1.00 eV and -2.54 eV, respectively. The interaction of the catechol molecule with biphenylene and metal-decorated biphenylene is due to the charge transfer from the O-2p orbitals of the catechol molecule to the C-2p orbitals of biphenylene and d-orbitals of metals in metal-decorated biphenylene, respectively. From the Bader charge calculation, we found that 0.05e amount of charge is transferred from the catechol molecule to pristine biphenylene, which gets almost double (~0.1e) for the Ti-decorated biphenylene sheet. The diffusion energy barrier for the clustering of the Pd and Ti atoms comes out to be 2.39 eV and 4.29 eV, computed by performing the climbing-image nudged elastic band calculations. We found that the catechol molecule gets desorbed from the pristine biphenylene sheet even at 100 K but remains attached to metal (Pd, Ti) decorated biphenylene sheets at room temperature by performing the ab-initio molecular dynamics simulations. The Ti-decorated biphenylene sheet has more sensitivity toward catechol adsorption while the Pd-decorated biphenylene sheet has a suitable recovery time at 500 K. The results suggest that the Pd and Ti-decorated biphenylene sheets are promising materials for catechol detection.

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