Touching with torque enables human-level robotic dexterity.

Wang, Ling; Sun, Yu; Yang, Laihao; Sun, Yuxuan; Guo, Qingkai; Liu, Yixue; Chen, Xuefeng; Shen, Yajing · Sci Adv · 2026

basic_science · Level V

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Abstract

Achieving human-like forceful manipulation remains a major challenge in robotics because of the lack of critical environmental interaction cues such as collisions, balance, and resistance. We present a torque-angle-pressure (TAP) tactile sensor leveraging magnetic flux density gradients to achieve bidirectional, ultrasensitive (~0.1°, ~0.4 newton-millimeter), and high-linearity (<i>R</i><sup>2</sup> = 0.99) sensing over a wide range (±241.6 newton-millimeter) through a single readout channel. The accurate torque sensing ability provides both force and distance information, bringing the environment into the interaction loop. A TAP-equipped robot can perform vision-free stable object placement and complete a balance beam stacking challenge in just 2.4 seconds with a success rate of 81.5%-both measured metrics surpassing human performance. It also supports adaptive daikon slicing with real-time posture and motion adjustments-capabilities rarely achievable in existing robotic systems. This work advances tactile sensing, enables forceful manipulation in unstructured environments, and represents a key step toward effective human-robot collaboration.

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