4.8 Article

Bubble-Pen Lithography

期刊

NANO LETTERS
卷 16, 期 1, 页码 701-708

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.5b04524

关键词

Microbubbles; photothermal effect; patterning; colloidal particles; quantum dots; two-dimensional materials

资金

  1. Beckman Young Investigator Program and the Texas Advanced Computing Center (TACC) at The University of Texas at Austin
  2. NATIONAL INSTITUTE OF BIOMEDICAL IMAGING AND BIOENGINEERING [R01EB011556, T32EB007507] Funding Source: NIH RePORTER
  3. NATIONAL INSTITUTE OF NEUROLOGICAL DISORDERS AND STROKE [R01NS082518] Funding Source: NIH RePORTER

向作者/读者索取更多资源

Current lithography teclmiques, which employ photon, electron, or ion beams to induce chemical or physical reactions for micro/nano-fabrication, have remained challenging in patterning chemically synthesized colloidal particles, which are emerging as building blocks for functional devices. Herein, we develop a new technique - bubble-pen lithography (BPL) - to pattern colloidal particles on substrates using optically controlled microbubbles. Briefly, a single laser beam generates a microbubble at the interface of colloidal suspension and a plasmonic substrate via plasmon-enhanced photothermal effects. The microbubble captures and immobilizes the colloidal particles on the substrate through coordinated actions of Marangoni convection, surface tension, gas pressure, and substrate adhesion. Through directing the laser beam to move the microbubble, we create arbitrary single-particle patterns and particle assemblies with different resolutions and architectures. Furthermore, we have applied BPL to pattern CdSe/ZnS quantum dots on plasmonic substrates and polystyrene (PS) microparticles on two-dimensional (2D) atomic-layer materials. With the low-power operation, arbitrary patterning and applicability to general colloidal particles, BPL will find a wide range of applications in microelectronics, nanophotonics, and nanomedicine.

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