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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Effect of caffeic acid adsorption in controlling the morphology of gold nanoparticles: role of surface coverage and functional groups
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Effect of caffeic acid adsorption in controlling the morphology of gold nanoparticles: role of surface coverage and functional groups

机译:咖啡酸吸附对控制金纳米颗粒形态的影响:表面覆盖和官能团的作用

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Caffeic acid (CA) is well known for its strong adsorption on metal or metal oxide surfaces mostly due to the catecholic functional group. On the other hand, the detailed adsorption configurations and the effects of functional groups on molecular adsorption have not been clarified yet. In this study, first-principles calculations were implemented to elucidate the adsorption phenomena of CA and its deprotonated forms on Au(100), (110) and (111), and then predict the morphology of Au nanoparticles (AuNPs). The adsorption energetics and configurations were carefully examined by employing van der Waals interactions to take dispersion forces into consideration. It was found that the adsorption strengths and geometries of the adsorbates are significantly changed by the surface coverages, deprotonated forms, and bound functional groups. These changes in adsorption features induce changes in surface energies, thereby resulting in different morphologies of AuNPs. To accelerate the morphology prediction of AuNPs, we demonstrated that the adsorption energy of CA can be rapidly estimated by the sum of the adsorption energies of the effective functional groups. Our results provide not only fundamental information about the adsorption behaviors of organic molecules on metal surfaces, but also insights for application in the customized synthesis of nanoparticles.
机译:咖啡酸(CA)众所周知,主要是由于咖啡酸官能团,其在金属或金属氧化物表面上的强吸附性。另一方面,尚未阐明详细的吸附构型和官能团对分子吸附的影响。在这项研究中,进行第一性原理计算以阐明CA及其去质子形式在Au(100),(110)和(111)上的吸附现象,然后预测Au纳米颗粒(AuNPs)的形态。通过利用范德华相互作用来仔细考虑吸附能和构型,以考虑分散力。发现被吸附物的吸附强度和几何形状被表面覆盖率,去质子化形式和结合的官能团显着改变。吸附特征的这些变化引起表面能的变化,从而导致AuNP的形态不同。为了加快AuNPs的形态预测,我们证明可以通过有效官能团的吸附能之和快速估算CA的吸附能。我们的结果不仅提供了有关有机分子在金属表面上吸附行为的基本信息,还提供了在定制纳米颗粒合成中应用的见识。

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