TY - JOUR
T1 - Development of a High-Precision Temporal Interference Stimulation System With Multi-Device Synchronization and Concurrent EEG
AU - Yan, Zilong
AU - Zhang, Jianxu
AU - Kang, Anshun
AU - Ouyang, Jian
AU - Luo, Qiwen
AU - Zhao, Yan
AU - Zhou, Yan
AU - Xie, Qi
AU - Liu, Ruobing
AU - Zhao, Jiayuan
AU - Liu, Xiaotong
AU - Pei, Guangying
AU - Wang, Li
AU - Liu, Tiantian
AU - Wu, Jinglong
AU - Funahashi, Shintaro
AU - Zhang, Jian
AU - Yan, Tianyi
N1 - Publisher Copyright:
© 2001-2011 IEEE.
PY - 2026
Y1 - 2026
N2 - Temporal interference stimulation (TIS) has emerged as a promising noninvasive approach for modulating deep brain structures by exploiting the interference of high-frequency electric fields. However, the practical deployment of TIS in neuromodulation experiments remains constrained by limitations in stimulation precision, channel isolation, compatibility with concurrent electrophysiological (EEG) recording, and coordination with multimodal stimulation paradigms. We present a high-precision and versatile TIS system designed to address these challenges through a unified hardware architecture within a single validated platform. The system achieves current output accuracy within ±1% and frequency control precision better than ±0. 1% across all channels. In TIS mode, it exhibits strong channel independence, with carrier leakage below 1% and interchannel frequency isolation exceeding 98.9%. Beyond conventional continuous stimulation, the platform supports programmable burst paradigms, including intermittent and continuous theta-burst stimulation (iTBS/cTBS). To enable artifact-minimized concurrent EEG recording, the system integrates a hardware-based high-pass filtering strategy that substantially suppresses stimulation-induced artifacts during EEG acquisition. In a proof-of-concept validation, EEG power spectral density recorded during TIS with high-pass filtering showed high similarity to Sham stimulation (Pearson’s r=0.97), while stimulation artifacts were reduced by up to 30-fold compared to unfiltered conditions. In addition, the system provides microsecondlevel trigger timing synchronization across devices, achieving inter-device timing errors below 200 μs, thereby enabling precise cortex-nucleus co-stimulation with external modalities. Numerical simulations and saline phantom experiments further confirmed accurate and reproducible control of the induced electric field, with strong spatial agreement between simulated and measured fields (Pearson’s > 0.97 for all components). These results show that the proposed system can deliver precise TIS, support concurrent EEG recording, and provide synchronized triggering for multimodal stimulation experiments.
AB - Temporal interference stimulation (TIS) has emerged as a promising noninvasive approach for modulating deep brain structures by exploiting the interference of high-frequency electric fields. However, the practical deployment of TIS in neuromodulation experiments remains constrained by limitations in stimulation precision, channel isolation, compatibility with concurrent electrophysiological (EEG) recording, and coordination with multimodal stimulation paradigms. We present a high-precision and versatile TIS system designed to address these challenges through a unified hardware architecture within a single validated platform. The system achieves current output accuracy within ±1% and frequency control precision better than ±0. 1% across all channels. In TIS mode, it exhibits strong channel independence, with carrier leakage below 1% and interchannel frequency isolation exceeding 98.9%. Beyond conventional continuous stimulation, the platform supports programmable burst paradigms, including intermittent and continuous theta-burst stimulation (iTBS/cTBS). To enable artifact-minimized concurrent EEG recording, the system integrates a hardware-based high-pass filtering strategy that substantially suppresses stimulation-induced artifacts during EEG acquisition. In a proof-of-concept validation, EEG power spectral density recorded during TIS with high-pass filtering showed high similarity to Sham stimulation (Pearson’s r=0.97), while stimulation artifacts were reduced by up to 30-fold compared to unfiltered conditions. In addition, the system provides microsecondlevel trigger timing synchronization across devices, achieving inter-device timing errors below 200 μs, thereby enabling precise cortex-nucleus co-stimulation with external modalities. Numerical simulations and saline phantom experiments further confirmed accurate and reproducible control of the induced electric field, with strong spatial agreement between simulated and measured fields (Pearson’s > 0.97 for all components). These results show that the proposed system can deliver precise TIS, support concurrent EEG recording, and provide synchronized triggering for multimodal stimulation experiments.
KW - Temporal interference stimulation
KW - concurrent EEG
KW - cortex-nucleus costimulation
KW - thetaburst stimulation
UR - https://www.scopus.com/pages/publications/105041346561
U2 - 10.1109/TNSRE.2026.3697980
DO - 10.1109/TNSRE.2026.3697980
M3 - Article
C2 - 42224328
AN - SCOPUS:105041346561
SN - 1534-4320
VL - 34
SP - 2859
EP - 2869
JO - IEEE Transactions on Neural Systems and Rehabilitation Engineering
JF - IEEE Transactions on Neural Systems and Rehabilitation Engineering
ER -