TY - JOUR
T1 - Graphene Electric Field Sensor Enables Single Shot Label-Free Imaging of Bioelectric Potentials
AU - Balch, Halleh B.
AU - McGuire, Allister F.
AU - Horng, Jason
AU - Tsai, Hsin Zon
AU - Qi, Kevin K.
AU - Duh, Yi Shiou
AU - Forrester, Patrick R.
AU - Crommie, Michael F.
AU - Cui, Bianxiao
AU - Wang, Feng
N1 - Publisher Copyright:
© 2021 American Chemical Society.
PY - 2021/6/23
Y1 - 2021/6/23
N2 - The measurement of electrical activity across systems of excitable cells underlies current progress in neuroscience, cardiac pharmacology, and neurotechnology. However, bioelectricity spans orders of magnitude in intensity, space, and time, posing substantial technological challenges. The development of methods permitting network-scale recordings with high spatial resolution remains key to studies of electrogenic cells, emergent networks, and bioelectric computation. Here, we demonstrate single-shot and label-free imaging of extracellular potentials with high resolution across a wide field-of-view. The critically coupled waveguide-amplified graphene electric field (CAGE) sensor leverages the field-sensitive optical transitions in graphene to convert electric potentials into the optical regime. As a proof-of-concept, we use the CAGE sensor to detect native electrical activity from cardiac action potentials with tens-of-microns resolution, simultaneously map the propagation of these potentials at tissue-scale, and monitor their modification by pharmacological agents. This platform is robust, scalable, and compatible with existing microscopy techniques for multimodal correlative imaging.
AB - The measurement of electrical activity across systems of excitable cells underlies current progress in neuroscience, cardiac pharmacology, and neurotechnology. However, bioelectricity spans orders of magnitude in intensity, space, and time, posing substantial technological challenges. The development of methods permitting network-scale recordings with high spatial resolution remains key to studies of electrogenic cells, emergent networks, and bioelectric computation. Here, we demonstrate single-shot and label-free imaging of extracellular potentials with high resolution across a wide field-of-view. The critically coupled waveguide-amplified graphene electric field (CAGE) sensor leverages the field-sensitive optical transitions in graphene to convert electric potentials into the optical regime. As a proof-of-concept, we use the CAGE sensor to detect native electrical activity from cardiac action potentials with tens-of-microns resolution, simultaneously map the propagation of these potentials at tissue-scale, and monitor their modification by pharmacological agents. This platform is robust, scalable, and compatible with existing microscopy techniques for multimodal correlative imaging.
UR - https://www.scopus.com/pages/publications/85108588582
UR - https://www.scopus.com/pages/publications/85108588582#tab=citedBy
U2 - 10.1021/acs.nanolett.1c00543
DO - 10.1021/acs.nanolett.1c00543
M3 - Article
C2 - 34102057
AN - SCOPUS:85108588582
SN - 1530-6984
VL - 21
SP - 4944
EP - 4949
JO - Nano letters
JF - Nano letters
IS - 12
ER -