Selective Growth of Bulk‐Like Perovskite in Plasmonic Nanoholes for Enhanced Two‐Photon‐Excited Emission

J Jung‐Jae Do (Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis Minnesota USA) B Bryan K. Chantigian (Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA) D Daniel Upcraft (Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA) W Wonwoo Lee H Ho‐Sung Shin (Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis Minnesota USA) N Nathan C. Lindquist (Department of Physics and Engineering Bethel University St Paul Minnesota USA) J Jae Woong Jung B Bharat Jalan (Department of Chemical Engineering and Materials Science, University of Minnesota−Twin Cities) S Sang‐Hyun Oh (Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA)

Abstract

ABSTRACT Plasmon‐enhanced nonlinear optical phenomena in hybrid perovskite‐plasmonic systems present significant opportunities for photodetection, bioimaging, and quantum light sources. However, achieving uniform growth of luminescent materials within confined plasmonic hotspots remains challenging, as conventional surface deposition or infiltration approaches cannot fill nanocavities effectively. To resolve this, we present a vacuum‐assisted capillary infiltration (VACI) strategy for delivering precursor solutions into gold (Au) nanohole (NH) arrays, enabling in situ crystallization within plasmonic cavities. This work demonstrates selective bulk‐like cesium lead bromide (CsPbBr 3 ) growth inside NHs through precise infiltration and controlled crystallization. By integrating the capillary effect with vacuum pressure, this approach ensures uniform filling beyond conventional methods. The successful integration of CsPbBr 3 was confirmed through peel‐off techniques and structural/chemical analyses. Electromagnetic simulations predict an average field enhancement of | E/E 0 | ≈2.80 at 800 nm, consistent with an experimentally observed ∼40‐fold increase in two‐photon absorption (TPA)‐induced green emission ( λ ≈526 nm). Unlike prior TPA systems employing quantum dots, rare‐earth doped crystals, or organic chromophores, this approach integrates bulk‐like perovskite directly into plasmonic NH cavities. This establishes a general framework for material‐structure integration in plasmonics and nanophotonics, and a foundation for infrared photodetection, high‐resolution nonlinear imaging, and quantum light sources.

Article Details

Volume / Issue Vol. 38, Issue 45
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

J

Jung‐Jae Do

Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis Minnesota USA

B

Bryan K. Chantigian

Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA

D

Daniel Upcraft

Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA

W

Wonwoo Lee

H

Ho‐Sung Shin

Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis Minnesota USA

N

Nathan C. Lindquist

Department of Physics and Engineering Bethel University St Paul Minnesota USA

J

Jae Woong Jung

B

Bharat Jalan

Department of Chemical Engineering and Materials Science, University of Minnesota−Twin Cities

S

Sang‐Hyun Oh

Department of Electrical and Computer Engineering University of Minnesota Minneapolis Minnesota USA