Guided domino lithography for uniform fabrication of single-digit-nanometer scale plasmonic nanoantenna

Author:

Oh Dong Kyo1ORCID,Kim Yeseul1,Kim Jaekyung1,Kim Inki23ORCID,Rho Junsuk1456ORCID

Affiliation:

1. Department of Mechanical Engineering , Pohang University of Science and Technology (POSTECH) , Pohang 37673 , Republic of Korea

2. Department of Biophysics, Institute of Quantum Biophysics , Sungkyunkwan University , Suwon 16419 , Republic of Korea

3. Department of Intelligent Precision Healthcare Convergence , Sungkyunkwan University , Suwon 16419 , Republic of Korea

4. Department of Chemical Engineering , Pohang University of Science and Technology (POSTECH) , Pohang 37673 , Republic of Korea

5. POSCO-POSTECH-RIST Convergence Research Center for Flat Optics and Metaphotonics , Pohang 37673 , Republic of Korea

6. National Institute of Nanomaterials Technology (NINT) , Pohang 37673 , Republic of Korea

Abstract

Abstract Single-digit-nanometer scale plasmonic nanoantenna platforms are widely used in optical sensors, quantum plasmonics, and other applications. Uniform and reliable fabrications with a single-digit-nanometer resolution are desirable for diverse quantum nanophotonic device applications, but improving the process yield and uniformity of the shape of the nanoantenna over the entire fabrication area remains a challenge. Here we report the guided domino lithography fabrication method for uniform ultra-sharp nanoantenna arrays. We use a collapsing of unstable photoresist nanostructures with a guide structure to uniformly fabricate ultra-sharp bowtie photoresist masks. We directly compare the yields of the conventional and the guided domino lithography under the optimized electron beam exposing and development conditions. Furthermore, we conduct a rigorous analysis to verify the electric field enhancement effect from ultra-sharp bowtie nanoantennas fabricated with different geometry. We believe that guided domino lithography can be a promising solution toward a practical manufacturing method for single-digit-nanometer plasmonic nanoantennas.

Funder

POSCO

National Research Foundation of Korea

Samsung Science and Technology Foundation

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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