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Giant Plasmonic Enhancement of Chiroptical Properties by Anisotropic Gold Nanocrystals Grown In Situ in a Chiral Polymer

delete2024-07-05
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PRE
AI
S
Shema R. Abraham
J
Jojo P. Joseph
B
B. Medini Rajapakse
A
Avisek Dutta
R
Rahul K. Das
A
Andrey N. Kuzmin
A
Alexander Baev
L
Luis Velarde
P
Paras N. Prasad *
M
Mark T. Swihart *
DOI:10.1002/adom.202400914delete
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Abstract

Abstract

En 中文
Polymer-based chiral materials with exceptional optical activity can dramatically impact integrated chiral photonics due to the tunability of their optical responses coupled with ease of fabrication. Realizing these applications requires increasing the absorbance dissymmetry factor. Here, in situ, the synthesis of gold nanostars is introduced in a chiral polymer medium to produce chiral polymer-anisotropic plasmonic nanocrystal nanocomposites. The optimized nanocomposite shows a tenfold enhancement of dissymmetry factor, gabs (up to 0.64) and a corresponding 46-fold augmented circular dichroism (CD) value upon annealing, relative to the annealed pure chiral polymer film. Moreover, the enhancement relative to the non-annealed polymer-gold nanostar nanocomposite is strikingly higher: a 35-fold increase in gabs and a 4272-fold increase in CD. Based on computational analysis, it is concluded that the local plasmon field enhancement around the crevices and tips of nanostars is mainly responsible for the observed effect which is further supported by a signal enhancement in Surface Enhanced Raman Scattering (SERS). Thus, this study underscores the significant role of close-range plasmon interactions in altering the chiroptical response of nanocomposite materials and a practical pathway toward the realization of next-generation integrated photonics and optoelectronic circuitry with photon spin control. In situ, the growth of anisotropic plasmonic nanocrystals within a chiral polymer assembly significantly enhances ellipticity response. It is attributed to local plasmon field enhancements at nanostar crevices and tips, supported by surface-enhanced Raman scattering (SERS). This research demonstrates the impact of close-range plasmon interactions on chiroptical responses, enabling the development of integrated photonics and optoelectronic circuits. image
Keywords:
anisotropic plasmonic nanocrystals
chiral polymer nanocomposites
dissymmetry ratio
plasmonic CD enhancement
surface-enhanced Raman scattering

Journal

Advanced Optical Materials cover
Advanced Optical Materials
IF:
7.2
Papers:
8.6K
Citations:
4.6W

Organization

U
university at buffalo, suny
Scholars:
1.1W
Papers: 9.5K
Citations: 9
S
state university of new york (suny) system
Scholars:
6.4W
Papers: 5.7W
Citations: 65