scispace - formally typeset
J

Jiaru Chu

Researcher at University of Science and Technology of China

Publications -  267
Citations -  4305

Jiaru Chu is an academic researcher from University of Science and Technology of China. The author has contributed to research in topics: Femtosecond & Laser. The author has an hindex of 26, co-authored 229 publications receiving 2531 citations.

Papers
More filters
Journal ArticleDOI

Multifunctional Janus Microplates Arrays Actuated by Magnetic Fields for Water/Light Switches and Bio-Inspired Assimilatory Coloration

TL;DR: Inspired by the biological assimilatory coloration of chameleons, dynamically color conversion can be skillfully realized by applying different colors on each side of the Janus HAR-MMA, which provides a versatile platform for microfluidic, biomedical, and optical applications.
Journal ArticleDOI

Botanical-Inspired 4D Printing of Hydrogel at the Microscale

TL;DR: The miniature biomimetic 4D printing of pH‐responsive hydrogel is reported in spatiotemporal domain by femtosecond laser direct writing, showcasing its possibilities in micromanipulation, single‐cell analysis, and drug delivery.
Journal ArticleDOI

Efficient nonlinear beam shaping in three-dimensional lithium niobate nonlinear photonic crystals

TL;DR: Efficient nonlinear beam shaping using three-dimensional lithium niobate photonic crystals fabricated using a femtosecond-laser-engineering technique paves a way for its applications in optical communication, super-resolution imaging, high-dimensional entangled source, etc.
Journal ArticleDOI

All-in-One Iontronic Sensing Paper

TL;DR: In this paper, an iontronic sensing paper (ISP) is introduced to the classic paper substrates by incorporating both ionic and conductive patterns into an all-in-one flexible sensing platform.
Journal ArticleDOI

Nanogap Plasmonic Structures Fabricated by Switchable Capillary-Force Driven Self-Assembly for Localized Sensing of Anticancer Medicines with Microfluidic SERS

TL;DR: In this article, a switchable self-assembly method is developed to manufacture 3D nanogap plasmonic structures by combining supercritical drying and capillary-force driven selfassembly (CFSA) of micropillars fabricated by laser printing.