scholarly journals Ultrafast 25-fs relaxation in highly excited states of methyl azide mediated by strong nonadiabatic coupling

2017 ◽  
Vol 114 (52) ◽  
pp. E11072-E11081 ◽  
Author(s):  
William K. Peters ◽  
David E. Couch ◽  
Benoit Mignolet ◽  
Xuetao Shi ◽  
Quynh L. Nguyen ◽  
...  

Highly excited electronic states are challenging to explore experimentally and theoretically—due to the large density of states and the fact that small structural changes lead to large changes in electronic character with associated strong nonadiabatic dynamics. They can play a key role in astrophysical and ionospheric chemistry, as well as the detonation chemistry of high-energy density materials. Here, we implement ultrafast vacuum-UV (VUV)-driven electron–ion coincidence imaging spectroscopy to directly probe the reaction pathways of highly excited states of energetic molecules—in this case, methyl azide. Our data, combined with advanced theoretical simulations, show that photoexcitation of methyl azide by a 10-fs UV pulse at 8 eV drives fast structural changes and strong nonadiabatic coupling that leads to relaxation to other excited states on a surprisingly fast timescale of 25 fs. This ultrafast relaxation differs from dynamics occurring on lower excited states, where the timescale required for the wavepacket to reach a region of strong nonadiabatic coupling is typically much longer. Moreover, our theoretical calculations show that ultrafast relaxation of the wavepacket to a lower excited state occurs along one of the conical intersection seams before reaching the minimum energy conical intersection. These findings are important for understanding the unique strongly coupled non-Born–Oppenheimer molecular dynamics of VUV-excited energetic molecules. Although such observations have been predicted for many years, this study represents one of the few where such strongly coupled non-Born–Oppenheimer molecular dynamics of VUV-excited energetic molecules have been conclusively observed directly, making it possible to identify the ultrafast reaction pathways.

2021 ◽  
Author(s):  
Robert Sprenkle ◽  
Luciano Silvestri ◽  
M. S. Murillo ◽  
Scott Bergeson

Abstract New facilities such as the National Ignition Facility and the Linac Coherent Light Source have pushed the frontiers of high energy-density matter. These facilities offer unprecedented opportunities for exploring extreme states of matter, ranging from cryogenic solid-state systems to hot, dense plasmas, with applications to inertial-confinement fusion and astrophysics. However, significant gaps in our understanding of material properties in these rapidly evolving systems still persist. In particular, non-equilibrium transport properties of strongly-coupled Coulomb systems remain an open question. Here, we study ion-ion temperature relaxation in a binary mixture, exploiting a recently-developed dual-species ultracold neutral plasma. We compare measured relaxation rates with atomistic simulations and a range of popular theories. Our work validates the assumptions and capabilities of the simulations and invalidates theoretical models in this regime. This work illustrates an approach for precision determinations of detailed material properties in Coulomb mixtures across a wide range of conditions.


Author(s):  
Shu-Li You ◽  
Min Zhu ◽  
Xiao Zhang ◽  
Chao Zheng

Visible-light-induced dearomatization reaction <i>via</i> energy transfer mechanism is an emerging strategy for the synthesis of highly strained polycyclic molecules. Transient, high-energy diradical species on excited states are typically involved in this type of reactions as key intermediates. Herein, we report the visible-light-induced divergent dearomatization of indole-tethered O-methyl oximes, in which the reactivity of the open-shelled singlet diradical intermediates towards competitive reaction pathways, namely [2+2] cycloaddition and 1,5-hydrogen atom transfer, can be well regulated. The mechanism has been well supported by a series of experimental and computational investigations. The dearomatization reactions allow the facile synthesis of structurally appealing indoline-fused azetidines and related polycyclic molecules with high efficiency and exclusive selectivity.


2018 ◽  
Vol 1 (9) ◽  
pp. 4514-4521 ◽  
Author(s):  
Xiaoya Wang ◽  
Yuh-Chieh Lin ◽  
Hui Zhou ◽  
Fredrick Omenya ◽  
Iek-Heng Chu ◽  
...  

1993 ◽  
Vol 316 ◽  
Author(s):  
Z. Insepov ◽  
M. Sosnowski ◽  
G. H. Takaoka ◽  
I. Yamada

ABSTRACTBeams of energetic clusters may provide a unique tool for surface modification. Experimental data on the effects of cluster bombardment are still scarce but Molecular Dynamics Simulation may help guide the research in most promising directions. We modeled Ar cluster impact on gold surface and compared the calculated sputtering yield with the available experimental data at 30 keV. The results confirm the uniqueness of cluster impacts characterized by deposition of very high energy density at the surface.


2021 ◽  
Vol 23 (7) ◽  
pp. 4353-4364
Author(s):  
Qun Wei ◽  
Ying Yang ◽  
Alexander Gavrilov ◽  
Xihong Peng

The existence of a new two dimensional CN2 structure was predicted using ab initio molecular dynamics (AIMD) and density-functional theory calculations.


2020 ◽  
Author(s):  
Shu-Li You ◽  
Min Zhu ◽  
Xiao Zhang ◽  
Chao Zheng

Visible-light-induced dearomatization reaction <i>via</i> energy transfer mechanism is an emerging strategy for the synthesis of highly strained polycyclic molecules. Transient, high-energy diradical species on excited states are typically involved in this type of reactions as key intermediates. Herein, we report the visible-light-induced divergent dearomatization of indole-tethered O-methyl oximes, in which the reactivity of the open-shelled singlet diradical intermediates towards competitive reaction pathways, namely [2+2] cycloaddition and 1,5-hydrogen atom transfer, can be well regulated. The mechanism has been well supported by a series of experimental and computational investigations. The dearomatization reactions allow the facile synthesis of structurally appealing indoline-fused azetidines and related polycyclic molecules with high efficiency and exclusive selectivity.


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