Dr. Chen’s primary research interests lie in additive manufacturing, polymer-derived ceramics, and semiconductor applications. He focuses on the design and processing of smart ceramic materials using 3D/4D printing technologies. His work bridges traditional ceramics with modern electronics, enabling innovations in reconfigurable structures, temperature sensors, and electromagnetic devices. A key area of interest is the development of lightweight, high-performance ceramics with tunable properties, particularly for sensing, actuation, and aerospace applications. His recent projects explore vat photopolymerization for SiCN and SiBCN-based ceramics, real-time material behavior modeling, and coating technologies for extreme environments. He is also involved in stimuli-responsive material systems, contributing to the advancement of intelligent electronics. His interdisciplinary research integrates materials engineering, electronic design, and digital fabrication, offering scalable and programmable material solutions for future smart systems. By combining structural innovation with electronic functionality, Dr. Chen aims to reshape how materials are conceived and manufactured.
Publication Top Notes:
Title: Additive manufacturing of structural materials
Citations: 572
Title: Lightweight and geometrically complex ceramics derived from 4D printed shape memory precursor with reconfigurability and programmability for sensing and actuation applications
Citations: 43
Title: Fabrication of polymer-derived SiBCN ceramic temperature sensor with excellent sensing performance
Citations: 17
Title: Fabrication of electrical semi-conductive SiCN ceramics by vat photopolymerization
Citations: 8
Title: 3D/4D additive–subtractive manufacturing of heterogeneous ceramics
Citations: 5
Title: Temperature and frequency dependent conductive behavior study on polymer-derived SiBCN ceramics
Citations: 3
Title: Novel anti-oxidation coating prepared by polymer-derived ceramic for harsh environments up to 1200°C
Citations: 2
Title: Real-time Bayesian model calibration method for C/SiC mechanical behavior considering model bias
Citations: 1
Title: Recent advances in stimuli-responsive materials for intelligent electronics
Title: Oxidation behavior of TiB2 from 600–1400°C considering microstructure evolution, oxidation kinetics, and mechanisms
Title: Evolution of dielectric properties of SiBCN ceramics and its derived wireless passive temperature sensor application