National Institute of Advanced Industrial Science and Technology, Central 2, 1-1-1 Umezono, Tsukuba 305-8568, Japan.
Proc Natl Acad Sci U S A. 2012 Jun 5;109(23):8861-5. doi: 10.1073/pnas.1204388109. Epub 2012 May 21.
Nanoscale molecular confinement substantially modifies the functionality and electronic properties of encapsulated molecules. Many works have approached this problem from the perspective of quantifying ground-state molecular changes, but little is known about the nonequilibrium dynamics of encapsulated molecular system. In this letter, we report an analysis of the nonequilibrium dynamics of acetylene (C(2)H(2)) inside a semiconducting carbon nanotube (CNT). An ultrashort high-intense laser pulse (2 fs width and 10(15) W/cm(2) intensity) brings the systems out of equilibrium. This process is modeled by comprehensive first-principles time-dependent density-functional simulations. When encapsulated, acetylene dimer, unlike a single acetylene molecule, exhibits correlated vibrational dynamics (C-C bond rotation and H-C-C bending) that is markedly different from the dynamics observed in the gas phase. This result highlights the role of CNT in modulating the optical electric field within the tube. At longer simulation timescales (> 20 fs) in the largest-diameter tube studied here [CNT(14,0)], we observe synchronized rotation about the C-C axes in the dimer and ultimately ejection of one of the four hydrogen atoms. Our results illustrate the richness of photochemical phenomena in confined geometries.
纳米分子限制极大地改变了被包裹分子的功能和电子性质。许多工作从量化分子基态变化的角度来处理这个问题,但对于被包裹分子体系的非平衡动力学却知之甚少。在这封信中,我们报告了对半导体碳纳米管(CNT)内乙炔(C2H2)的非平衡动力学的分析。一个超短的高强度激光脉冲(2fs 宽度和 1015W/cm2强度)使体系脱离平衡。这个过程是通过综合的第一性原理时间相关密度泛函模拟来建模的。当被包裹时,乙炔二聚体与单个乙炔分子不同,表现出相关的振动动力学(C-C 键旋转和 H-C-C 弯曲),这与在气相中观察到的动力学明显不同。这一结果突出了 CNT 在调节管内光学电场方面的作用。在我们研究的最大直径管[CNT(14,0)]中,更长的模拟时间尺度(>20fs)下,我们观察到二聚体中 C-C 轴的同步旋转,并最终逐出四个氢原子中的一个。我们的结果说明了受限几何形状中光化学反应的丰富性。