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김대식

Kim, Dai-Sik
Nano Optics Group
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Selection rule engineering of forbidden transitions of a hydrogen atom near a nanogap

Author(s)
Kim, Hyunyoung Y.Kim, Daisik S.
Issued Date
2018-01
DOI
10.1515/nanoph-2017-0037
URI
https://scholarworks.unist.ac.kr/handle/201301/26360
Fulltext
https://www.degruyter.com/view/j/nanoph.2018.7.issue-1/nanoph-2017-0037/nanoph-2017-0037.xml
Citation
NANOPHOTONICS, v.7, no.1, pp.229 - 236
Abstract
We perform an analytical study on the allowance of forbidden transitions for a hydrogen atom placed near line dipole sources, mimicking light emanating from a one-dimensional metallic nanogap. It is shown that the rapid variation of the electric field vector, inevitable in the near zone, completely breaks the selection rule of Delta l = +/- 1. While the forbidden transitions between spherically symmetric S states, such as 2S to 1S or 3S to 1S (Delta l = 0), are rather robust against selection rule breakage, Delta l = +/- 2 transitions such as between 3D and 1S or 3D and 2S states are very vulnerable to the spatial variation of the perturbing electric field. Transitions between 2S and 3D states are enhanced by many orders of magnitude, aided by the quadratic nature of both the perturbing Hamiltonian and D wavefunctions. The forbidden dipole moment, which approaches one Bohr radius times the electric charge in the vicinity of the gap, can be written in a simple closed form owing to the one-dimensional nature of our gap. With large enough effective volume together with the symmetric nature of the excited state wavefunctions, our work paves way towards atomic physics application of infinitely long nanogaps.
Publisher
WALTER DE GRUYTER GMBH
ISSN
2192-8606
Keyword (Author)
nanogapselection ruleforbidden transitionquantum plasmonics
Keyword
FIELD ENHANCEMENTPROBABILITIESFREQUENCIES

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