Area of research
Biophysics · Biomedical Engineering
Research interest
Research interests include Advanced Fluorescence Microscopy Techniques, Optical Coherence Tomography Applications, Photoacoustic and Ultrasonic Imaging, and Cell Image Analysis Techniques.
Adaptive optical correction for in vivo two-photon fluorescence microscopy with neural fields.
Designer indicators for two-photon recording of subthreshold voltage dynamics.
Convergence of Cortical and Thalamic Origins of Free Behavior Modulation of Mouse Primary Visual Cortex
<i>In vivo</i>
aberration measurement and correction for ultrafast FACED two-photon fluorescence microscopy of the brain
Modal focal adaptive optics for Bessel-focus two-photon fluorescence microscopy.
FACED 2.0 enables large-scale voltage and calcium imaging in vivo.
Multiphoton and Harmonic Imaging of Microarchitected Materials.
Sensitive dLight for imaging broad-spectrum dopamine events across brain regions
Suite3D: Volumetric cell detection for two-photon microscopy
Stimulation with ECoG electrodes modulates cortical activity and sensory processing in the awake mouse brain
Structure and Function of Lens Suture Examined by 2-photon Fluorescence Microscopic Imaging
Multiphoton fluorescence microscopy for in vivo imaging.
High-throughput volumetric mapping of synaptic transmission.
Adaptive optical third-harmonic generation microscopy for in vivo imaging of tissues.
Frequency-multiplexed aberration measurement for confocal microscopy.
A positively tuned voltage indicator for extended electrical recordings in the brain.
Adaptive optics for optical microscopy [Invited].
Stimulus edges induce orientation tuning in superior colliculus.
Retinal microvascular and neuronal pathologies probed in vivo by adaptive optical two-photon fluorescence microscopy.
Introduction to the Feature Issue on Adaptive Optics for Biomedical Applications.
Author response: Retinal microvascular and neuronal pathologies probed in vivo by adaptive optical two-photon fluorescence microscopy
Feature issue introduction: ultrafast optical imaging.
Ultrafast two-photon fluorescence imaging of cerebral blood circulation in the mouse brain in vivo.
Neurophotonic tools for microscopic measurements and manipulation: status report.
Bessel-droplet foci enable high-resolution and high-contrast volumetric imaging of synapses and circulation in the brain <i>in vivo</i>
Retinal microvascular and neuronal pathologies probed <i>in vivo</i> by adaptive optical two-photon fluorescence microscopy
Adaptive optics for high-resolution imaging.
A near-infrared genetically encoded calcium indicator for in vivo imaging.
Speed scaling in multiphoton fluorescence microscopy
An adaptive optics module for deep tissue multiphoton imaging in vivo.