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Tests of a readout front-end electronics for a pixel detector based on inverter amplifier.

, and . MIXDES, page 273-278. IEEE, (2013)

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Development of a fast readout chip in deep submicron technology for pixel hybrid detectors., , and . ECCTD, page 409-412. IEEE, (2011)FPGA Simulations of Charge Sharing Effect Compensation Algorithms for Implementation in Deep Sub-Micron Technologies., , , and . UKSim, page 780-786. IEEE, (2013)SPHIRD-Single Photon Counting Pixel Readout ASIC With Pulse Pile-Up Compensation Methods., , , , , , and . IEEE Trans. Circuits Syst. II Express Briefs, 70 (9): 3248-3252 (September 2023)ADCs in deep submicron technologies for ASICs of pixel architecture., , , and . DDECS, page 278-281. IEEE Computer Society, (2014)Ultra fast X-ray detection systems in nanometer and 3D technologies., , , , , , , , , and 2 other author(s). MIXDES, page 38-41. IEEE, (2014)Design of system-on-chip in 180 nm technology for multi-channel wireless recording of the nerve tissue electrical activity., , , , , and . MIXDES, page 267-271. IEEE, (2014)Single Photon Counting Readout IC With 44 e- rms ENC and 5.5 e- rms Offset Spread With Charge Sensitive Amplifier Active Feedback Discharge., , , , , and . IEEE Trans. Circuits Syst. I Regul. Pap., 70 (5): 1882-1892 (May 2023)Multichannel neural recording system based on family ASICs processed in submicron technology., , , , and . Microelectron. J., 45 (9): 1226-1231 (2014)Hybrid Detector with Interpixel Communication for Color X-ray Imaging., , , , , , and . ICECS, page 1-4. IEEE, (2021)Effective noise minimization in multichannel recording circuits processed in modern technologies for neurobiology experiments., , , and . BioCAS, page 344-347. IEEE, (2014)