Liu Hui, Yin Jie, Zhang Jinrui, Ran Hongshun, Lv Naixia, Jiang Wei, Li Hongping, Zhu Wenshuai, Li Huaming
Institute for Energy Research, School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, China.
School of the Environment and Safety Engineering, Jiangsu University, Zhenjiang 212013, China.
Nanomaterials (Basel). 2022 Jun 14;12(12):2046. doi: 10.3390/nano12122046.
Single atom adsorbents (SAAs) are a novel class of materials that have great potential in various fields, especially in the field of adsorptive desulfurization. However, it is still challenging to gain a fundamental understanding of the complicated behaviors on SAAs for adsorbing thiophenic compounds, such as 1-Benzothiophene (BT), Dibenzothiophene (DBT), and 4,6-Dimethyldibenzothiophene (4,6-DMDBT). Herein, we investigated the mechanisms of adsorptive desulfurization over a single Ag atom supported on defective hexagonal boron nitride nanosheets via density functional theory calculations. The Ag atom can be anchored onto three typical sites on the pristine h-BN, including the monoatomic defect vacancy (B-vacancy and N-vacancy) and the boron-nitrogen diatomic defect vacancy (B-N-divacancy). These three Ag-doped hexagonal boron nitride nanosheets all exhibit enhanced adsorption capacity for thiophenic compounds primarily by the S-Ag bond with π-π interaction maintaining. Furthermore, from the perspective of interaction energy, all three SAAs show a high selectivity to 4,6-DMDBT with the strong interaction energy (-33.9 kcal mol, -29.1 kcal mol, and -39.2 kcal mol, respectively). Notably, a little charge transfer demonstrated that the dominant driving force of such S-Ag bond is electrostatic interaction rather than coordination effect. These findings may shed light on the principles for modeling and designing high-performance and selective SAAs for adsorptive desulfurization.
单原子吸附剂(SAAs)是一类新型材料,在各个领域都具有巨大潜力,尤其是在吸附脱硫领域。然而,要深入了解SAAs吸附噻吩类化合物(如1-苯并噻吩(BT)、二苯并噻吩(DBT)和4,6-二甲基二苯并噻吩(4,6-DMDBT))时的复杂行为仍具有挑战性。在此,我们通过密度泛函理论计算研究了负载在缺陷六方氮化硼纳米片上的单个银原子的吸附脱硫机理。银原子可以锚定在原始h-BN上的三个典型位点上,包括单原子缺陷空位(B空位和N空位)以及硼氮双原子缺陷空位(B-N双空位)。这三种银掺杂的六方氮化硼纳米片均主要通过维持具有π-π相互作用的S-Ag键,对噻吩类化合物表现出增强的吸附能力。此外,从相互作用能的角度来看,所有三种SAA对4,6-DMDBT都表现出高选择性,其相互作用能很强(分别为-33.9 kcal mol、-29.1 kcal mol和-39.2 kcal mol)。值得注意的是,少量的电荷转移表明这种S-Ag键的主要驱动力是静电相互作用而非配位效应。这些发现可能为吸附脱硫高性能和选择性SAA的建模与设计原理提供启示。