SinoGreenTech Academic Portal
KD
Verified CAS / Academic Author2 Decoded Studies

Prof. Kai Dong

University of Electronic Science and Technology of China

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4310-4

Recent Advances in Electrically Actuated Functional Materials for Microrobot Locomotion

Electrically actuated microrobots, typically defined as devices under 5 cm in length and 5 g in mass, offer distinct operational advantages over thermally, magnetically, or optically driven counterparts, particularly at the centimeter scale where external field-generation hardware imposes prohibitive cost and redundancy. This review systematically examines the intrinsic coupling mechanisms between the electromechanical performance parameters of functional materials and the resulting locomotion modes of microrobots. The central premise is that material-level electromechanical properties—actuation strain, blocking force, energy density, and drive voltage—directly govern critical system-level capabilities including obstacle-crossing ability and energy efficiency. The authors analyze how distinct material classes, such as dielectric elastomers, piezoelectric ceramics, and shape-memory alloys, map to specific locomotion modalities, thereby delineating the current performance boundaries of the field. The review identifies that power supply and control strategy remain the two dominant bottlenecks limiting autonomous operation and long-duration mission execution. By establishing a direct correlation between material selection and locomotion performance, this work provides a structured framework for researchers to set research directions and performance targets. The analysis concludes with a summary of challenges and future trends, emphasizing the need for materials that simultaneously satisfy low drive voltage, high strain, and high power density requirements for real-world deployment in unstructured environments.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-024-2798-5

Enhancing nitrate electroreduction for ammonia production over electron-deficient Co3O4 with La doping regulation

Electrocatalytic nitrate reduction (NO3−RR) offers a dual solution for wastewater remediation and ambient ammonia synthesis, yet the competing hydrogen evolution reaction (HER) and sluggish eight-electron transfer limit Faradaic efficiency (FE) and yield. This study reports lanthanum-doped Co3O4 nanowire arrays on carbon cloth (La-Co3O4/CC) that achieve an NH3 FE of 96.36% and a yield of 537.44 μmol h−1 cm−2, markedly surpassing undoped Co3O4 (87.78%, 279.4 μmol h−1 cm−2). Density functional theory calculations reveal that La doping induces electron deficiency at Co sites, enhancing NO3− adsorption and optimizing hydrogenation energetics. A Zn–NO3− battery incorporating La-Co3O4/CC delivers a peak power density of 9.86 mW cm−2, demonstrating viable energy recovery. The catalyst maintains structural integrity over 24 h of continuous operation with negligible performance decay. This work establishes rare-earth doping as a rational strategy to overcome the intrinsic limitations of Co3O4 in nitrate electroreduction, providing a scalable pathway for decentralized ammonia production and nitrate removal.