Wykaz publikacji wybranego autora

Paweł Hottowy, dr inż.

adiunkt

Wydział Fizyki i Informatyki Stosowanej
WFiIS-kod, Katedra Oddziaływań i Detekcji Cząstek


  • 2022

    [dyscyplina 1] dziedzina nauk inżynieryjno-technicznych / inżynieria biomedyczna

    [dyscyplina 2] dziedzina nauk ścisłych i przyrodniczych / nauki fizyczne (50%)


  • 2018

    [dyscyplina 1] dziedzina nauk ścisłych i przyrodniczych / nauki fizyczne

    [dyscyplina 2] dziedzina nauk inżynieryjno-technicznych / inżynieria biomedyczna (50%)


[poprzednia klasyfikacja] obszar nauk ścisłych / dziedzina nauk fizycznych / fizyka


Identyfikatory Autora Informacje o Autorze w systemach zewnętrznych

ORCID: 0000-0002-7592-2195 połącz konto z ORCID

ResearcherID: R-4981-2019

Scopus: 6507358095

PBN: 5e709208878c28a04738ee75

OPI Nauka Polska

System Informacyjny AGH (SkOs)




1
  • A 0.0046 $mm^{2}$ low-distortion CMOS neural preamplifier for large-scale neuroelectronic interfaces
2
3
  • AC-coupled CMOS neural amplifier optimized for low level distortions over full bandwidth
4
  • Activation of ganglion cells and axon bundles using epiretinal electrical stimulation
5
  • Advancement of data acquisition system for neural activity experiments using multi-electrode arrays
6
  • An integrated multichannel waveform generator for large-scale spatio-temporal stimulation of neural tissue
7
  • Analysis and reduction of nonlinear distortion in AC-coupled CMOS neural amplifiers with tunable cutoff frequencies
8
  • Automatic identification of axon bundle activation for epiretinal prosthesis
9
  • Axon activation with focal epiretinal stimulation in primate retina
10
  • Changes in physiological properties of rat ganglion cells during retinal degeneration
11
  • Dense arrays of micro-needles for recording and electrical stimulation of neural activity in acute brain slices
12
  • Design of a multichannel ASIC for large scale spatio-temporal distributed simulation of neural tissue
13
14
  • Development of integrated circuits for readout of microelectrode arrays to image neuronal activity in live retinal tissue
15
  • Efficient characterization of electrically evoked responses for neural interfaces
16
  • Efficient modeling and calibration of multi-electrode stimuli for epiretinal implants
17
  • Electrical stimulation of mammalian retinal ganglion cells using dense arrays of small-diameter electrodes
18
  • Electrical stimulation of mammalian retinal ganglion cells with multielectrode arrays
19
  • Electrical stimulus artifact cancellation and neural spike detection on large multi-electrode arrays
20
  • Epiretinal stimulation with local returns enhances selectivity at cellular resolution
21
  • Focal electrical stimulation of human retinal ganglion cells for vision restoration
22
  • Focal electrical stimulation of major ganglion cell types in the primate retina for the design of visual prostheses
23
  • High-degree neurons feed cortical computations
24
  • High-fidelity reproduction of spatiotemporal visual signals for retinal prosthesis
25
  • High-fidelity reproduction of visual signals by electrical stimulation in the central primate retina