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Frontier exploration of laser-assisted electrochemical deposition: from multidimensional optical-field control to multifunctional device integration

  • Jiang Zhang
  • , Haoting Ma
  • , Changyi Liu
  • , Yanan Su
  • , Yuanyuan Xiong
  • , Richen Jia
  • , Qian Cheng*
  • *Corresponding author for this work
  • Beijing Institute of Technology

Research output: Contribution to journalReview articlepeer-review

Abstract

Laser-assisted electrochemical deposition (LAECD) integrates the spatiotemporal programmability of lasers with the interfacial selectivity of electrochemical processes, offering a promising route for micro/nanofabrication and functional device construction. Recent advances have demonstrated its potential in microelectrodes, interconnects, functional surfaces, and sensors. Nevertheless, current research remains largely confined to single-spot scanning and single-material systems, leading to bottlenecks in both processing throughput and system-level functionality. This review surveys frontier developments from two complementary perspectives: (i) optical-field dimensionality expansion—leveraging structured light, spatial light modulation, holography, and emerging sources to enable parallel deposition, complex 3D morphologies, and local reaction-field control; and (ii) material and functional dimensionality expansion—emphasizing in situ multi-material deposition, metal–nonmetal heterogeneous integration, and embedded device fabrication. Together, these perspectives delineate a pathway from “structure fabrication” toward “system manufacturing.” We further analyze key scientific and engineering challenges—including multi-physics coupling, material compatibility, precision–throughput trade-offs, in situ monitoring, and equipment standardization—and propose, for the first time, a roadmap toward an integrated “light–field–material–sensing–control” platform. This framework aims to transition LAECD from laboratory demonstrations into reproducible, scalable, and integrable manufacturing technologies.

Original languageEnglish
Article number115895
JournalOptics and Laser Technology
Volume204
DOIs
Publication statusPublished - Dec 2026
Externally publishedYes

Keywords

  • In situ fabrication
  • Laser-assisted electrochemical deposition
  • Micro/nanomanufacturing
  • Multi-material integration
  • Multifunctional devices
  • Optical-field control

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