Liguo Song

Dalian Maritime University

Papers

4

Total Citations

53

H-Index

3

About

Liguo Song is a leading researcher in bio-inspired soft robotics and triboelectric nanogenerator (TENG)-based tactile sensing, with a focus on underwater applications. His work bridges the gap between biological sensory systems and engineered devices, creating highly sensitive, self-powered sensors that mimic the tactile capabilities of marine organisms. Song’s major contributions include the development of a palm-like 3D tactile sensor for underwater robot grippers, which detects both vertical and shear forces—enabling precise object identification and grasp in low-visibility, high-noise ocean environments, inspired by sea otters. He has also designed an octopus-inspired soft gripper with embedded triboelectric sensors for underwater target recognition, and a bionic whisker sensor that replicates seal vibrissae to measure flow velocity and detect collisions. His most-cited paper (2024) has garnered 21 citations, reflecting growing interest in this niche. Song’s innovative use of liquid-metal electrodes and TENG technology enhances sensor durability and power efficiency, positioning his work at the forefront of marine robotics and human-machine interaction. His achievements promise to revolutionize underwater exploration and manipulation.

Research Focus

Key Achievements

3
H-Index
4
Papers
53
Total Citations
13
Avg Citations/Paper
🏆 Most Cited Paper
A palm-like 3D tactile sensor based on liquid-metal triboelectric nanogenerator for underwater robot gripper
21 citations · 2024
📈 Most Prolific Year: 2025 (2 Papers)
🤝 Key Collaborators: 22
🏛 Institutions: Dalian Maritime University

Top Papers

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Key Collaborators

Contact & Links

Available for collaboration
Content generated · 13 days ago