Krishna Jayant
Neuroscience · Purdue University West Lafayette
Publications
53
Citations
667
Est. group size
~7
Recurring co-author estimate
Active years
21
Publishing since 2006
Krishna Jayant's research focuses on developing tools and techniques to record electrical activity inside individual neurons, especially in tiny structures called dendrites and dendritic spines, using specialized nanopipettes, flexible electrodes, and imaging methods. This work combines neuroscience with engineering approaches like nanofluidics, microelectronics, and optical stimulation to study how brain cells process and compute information. The lab also develops implantable low-power electronic devices for recording neural signals in living animals.
Publication output has grown from occasional papers in 2017-2020 to a more consistent 4-7 papers per year from 2022 onward, suggesting an increasing and steady rate of output in recent years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Mild Focal Cooling Decouples Dendrites to Reconfigure Cortical Output
Advanced Science · 2026
- Thermophoresis induced by photothermal shock alters reversal potential and capacitance in neurons
Biophysical Journal · 2026
- Flexible nanopipettes for minimally invasive intracellular electrophysiology
WORLD SCIENTIFIC eBooks · 2026
- Intracellular neuronal recordings across DNA tiles
Nature Nanotechnology · 2026
- Satellite Image Segmentation using U-Net.
International Journal For Multidisciplinary Research · 2025
- Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
Cell Reports · 2024
- Implantation of Flexible Electrodes for Simultaneous in-vivo Extracellular Recording and Two-Photon Imaging
Proceedings of IMPRS · 2024
- Mild focal cooling selectively impacts computations in dendritic trees
bioRxiv (Cold Spring Harbor Laboratory) · 2024
- A $1.8\mu\mathrm{W}\ 5.5$ mm<sup>3</sup> ADC-less Neural Implant SoC utilizing 13.2pJ/Sample Time-domain Bi-phasic Quasi-static Brain Communication with Direct Analog to Time Conversion
ESSCIRC 2022- IEEE 48th European Solid State Circuits Conference (ESSCIRC) · 2022
- Probing Action Potential Generation and Timing under Multiplexed Basal Dendritic Computations Using Two-photon 3D Holographic Uncaging
bioRxiv (Cold Spring Harbor Laboratory) · 2022
- TD-BPQBC: A 1.8μW 5.5mm3 ADC-less Neural Implant SoC utilizing 13.2pJ/Sample Time-domain Bi-phasic Quasi-static Brain Communication
arXiv (Cornell University) · 2022
- Probing Action Potential Generation and Timing Under Multiplexed Basal Dendritic Computations Using Two-Photon 3D Holographic Uncaging
SSRN Electronic Journal · 2022
- Nanobubble-controlled nanofluidic transport
Science Advances · 2020
- A miniaturized multi-clamp CMOS amplifier for intracellular neural recording
Nature Electronics · 2019
- Flexible Nanopipettes for Minimally Invasive Intracellular Electrophysiology In Vivo
Cell Reports · 2019
- bioRxiv (Cold Spring Harbor Laboratory)×7
- Cell Reports×3
- Nature Nanotechnology×2
- Nature Electronics×2
- Science Advances×2
- Kevin J. Otto
Neuroscience · Purdue University West Lafayette
- Brandon S. Coventry
Neuroscience · Purdue University West Lafayette
- Woohyun Park
Neuroscience · Purdue University West Lafayette
- John M. Beggs
Neuroscience · Indiana University
- Maria C. Dadarlat
Neuroscience · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
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