BCI Atlas

Rice's Robinson and Yang laboratories: magnetoelectric wireless power, implant circuits and distributed stimulation. Published animal evidence stays separate from clinical goals.

Lab — American

Rice University, magnetoelectric bioelectronics labs

Rice · Robinson · Yang · SIMS · magnetoelectric · ME-BIT · wireless · stimulation · academic
Last reviewed against public sources: Oct 7, 2026

Rice magnetoelectric bioelectronics

Rice’s current faculty profiles identify Jacob T. Robinson as Professor of Electrical and Computer Engineering and Bioengineering, and Kaiyuan Yang as Associate Professor of Electrical and Computer Engineering. Yang leads the Secure and Intelligent Micro-Systems (SIMS) Lab. These are distinct laboratories with overlapping bioelectronics work, not one combined lab.

The Robinson lab describes magnetoelectric materials for wireless power and communication, miniature brain stimulators and distributed implant networks. The SIMS project page describes low-power implant electronics and magnetoelectric or optical power/data transfer, and lists the 2022 endovascular ME-BIT paper. Research directions are not proof that every listed device has all these functions.

This brief is separate from Rice’s Luan and Xie ultraflexible interface labs. A shared university does not assign one group’s hardware or animal results to another.

Cataloged work

Evidence boundary

The cataloged studies demonstrate stimulation and delivery under their reported experimental conditions. Acute human motor activation is not a clinical treatment. The studies do not establish a human clinical treatment, chronic rehabilitation, a complete distributed neural-recording decoder or regulatory approval. The lab website’s pain-treatment and cardiac-pacing goals remain goals unless a specific primary study supports the result.

Long-term packaging, transmitter burden, placement sensitivity and exposure-standard limits remain device-specific. The 2025 acute spinal configuration cannot borrow chronic survival from earlier glass-packaged hardware. A general lab claim about bidirectional communication does not create a recording uplink in that spinal experiment.

Map coordinates are omitted; university addresses do not establish a precise laboratory location.

Primary sources

Discrete two-film predecessors

The 2020 PVDF headstage and fully implanted PZT package precede the single-film ASIC platforms. Their respective applications are STN Parkinsonian rat rotations and MFB place preference, with separate three-rat cohorts. Primary paper grounds the Rice and UTHealth affiliations; the hardware configurations and behavioral outcomes are not merged.