首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Are phosphide nano-cages better than nitride nano-cages? A kinetic, thermodynamic and non-linear optical properties study of alkali metal encapsulated X12Y12 nano-cages
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Are phosphide nano-cages better than nitride nano-cages? A kinetic, thermodynamic and non-linear optical properties study of alkali metal encapsulated X12Y12 nano-cages

机译:磷化物纳米笼是否比氮化物纳米笼好?碱金属包覆的X12Y12纳米笼的动力学,热力学和非线性光学性质研究

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Density functional theory calculations have been performed for alkali metal encapsulated X12Y12 nano-cages (X = B, Al and Y = N, P) to evaluate their stability, boundary crossing barriers and optical (linear and non-linear) properties. The adsorption energies of alkali metals in nano-cages are calculated, and correlated with the size of the nano-cages and alkali atoms. Distortion (expansion) of the nano-cages caused by alkali metal encapsulation was estimated through distortion energy. The distortion energies show good correlation with the diameter of the nano-cages. Kinetic barriers for the movement of alkali metals through nano-cages (boundary crossing barriers) are quantitatively measured. This manuscript presents the first ever study on boundary crossing barriers for alkali metal atoms through any spherical surface. The translation of alkali metals through the boundary of nano-cages presents a new approach for encapsulation of alkali metal atoms ((particularly lithium)) in nano-cages. The linear and non-linear optical properties of alkali metal encapsulated nano-cages are calculated. A quite remarkable non-linear optical response is calculated for lithium and potassium encapsulated boron phosphide (B12P12 or BP) nano-cages. In general, the non-linear optical response of phosphide nano-cages is two to three orders of magnitude higher than those of the corresponding nitride nano-cages. The calculated first hyperpolarizability of the K@BP nano-cage is 5.7 x 10(5) a.u., a value comparable to that of the best NLO material reported in the literature. The electronic structures of nano-cages including the HOMO-LUMO gap, TDOS, PDOS and excitation energies are analyzed to rationalize the extraordinary NLO response of the phosphide nano-cages. The NLO response of the K@BP nano-cage is primarily attributed to a very low excitation energy (0.5 eV). Interaction of nitrogen and phosphorus (of the nano-cages) with alkali metals differs between aluminum and boron nano-cages. Interaction of lone pair containing atoms with alkali metals in aluminum nano-cages generates diffuse excess electrons, whereas no such diffuse excess electrons are generated in boron nano-cages. UV-Vis and infra-red spectral characteristics for these encapsulated nano-cages are presented as a reference for future studies.
机译:已对碱金属封装的X12Y12纳米笼(X = B,Al和Y = N,P)进行了密度泛函理论计算,以评估其稳定性,边界屏障和光学(线性和非线性)特性。计算了纳米笼中碱金属的吸附能,并与纳米笼和碱原子的大小相关。通过畸变能量估计由碱金属包封引起的纳米笼的畸变(膨胀)。畸变能量与纳米笼的直径显示出良好的相关性。定量测量了碱金属穿过纳米笼子运动的动力学屏障(边界穿越屏障)。该手稿提出了关于通过任何球形表面的碱金属原子的边界穿越势垒的首次研究。碱金属穿过纳米笼的边界的平移提出了一种在纳米笼中封装碱金属原子(特别是锂)的新方法。计算了碱金属包裹的纳米笼的线性和非线性光学性质。对于锂和钾包裹的磷化硼(B12P12或BP)纳米笼,计算出了非常出色的非线性光学响应。通常,磷化物纳米笼的非线性光学响应比相应的氮化物纳米笼的非线性光学响应高两到三个数量级。 K @ BP纳米笼的首次超极化率的计算值为5.7 x 10(5)a.u.,该值与文献中报道的最佳NLO材料相当。分析了纳米笼的电子结构,包括HOMO-LUMO间隙,TDOS,PDOS和激发能,以合理化磷化物纳米笼的非常规NLO响应。 K @ BP纳米笼的NLO响应主要归因于非常低的激发能(0.5 eV)。氮和磷(纳米笼)与碱金属的相互作用在铝和硼纳米笼之间有所不同。铝纳米笼中含有原子的孤对与碱金属的相互作用产生了扩散的过量电子,而在硼纳米笼中则没有这种扩散的过量电子产生。这些封装的纳米笼的紫外-可见和红外光谱特性被提出作为未来研究的参考。

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