TY - JOUR
T1 - Low-energy/pulse response and high-resolution-CMOS camera for spatiotemporal femtosecond laser pulses characterization @ 1.55 μ m
AU - Zapata-Farfan, Jennyfer
AU - Contreras-Martínez, Ramiro
AU - Rosete-Aguilar, Martha
AU - Garduño-Mejía, Jesús
AU - Castro-Marín, Pablo
AU - Rodríguez-Herrera, Oscar G.
AU - Bruce, Neil C.
AU - Ordóñez-Pérez, Mitzi
AU - Qureshi, Naser
AU - Ascanio, Gabriel
N1 - Funding Information:
We thank Efren Ulloa from UNAM. Jennyfer Zapata-Farfan acknowledges a grant from Consejo Nacional de Ciencia y Tec-nología (CONACyT), México and Programa de Maestría y Doctor-ado en Ingeniería, UNAM.
Publisher Copyright:
© 2019 Author(s).
PY - 2019/4/16
Y1 - 2019/4/16
N2 - In this work, we present a commercial CMOS (Complementary Metal Oxide Semiconductor) Raspberry Pi camera implemented as a Near-Infrared detector for both spatial and temporal characterization of femtosecond pulses delivered from a femtosecond Erbium Doped Fiber laser (fs-EDFL) @ 1.55 μm, based on the Two Photon Absorption (TPA) process. The capacity of the device was assessed by measuring the spatial beam profile of the fs-EDFL and comparing the experimental results with the theoretical Fresnel diffraction pattern. We also demonstrate the potential of the CMOS Raspberry Pi camera as a wavefront sensor through its a nonlinear response in a Shack-Hartmann array and for the temporal characterization of the femtosecond pulses delivered from the fs-EDFL through TPA Intensity autocorrelation measurements. The direct pulse detection and measurement, through the nonlinear response with a CMOS, is proposed as a novel and affordable high-resolution and high-sensitivity alternative to costly detectors such as CCDs, wavefront sensors and beam profilers @ 1.55 μm. The measured fluence threshold, down to 17.5 μJ/cm 2 , and pJ/pulse energy response represents the lowest reported values applied as a beam profiler and a TPA Shack-Hartmann wavefront sensor, to our knowledge.
AB - In this work, we present a commercial CMOS (Complementary Metal Oxide Semiconductor) Raspberry Pi camera implemented as a Near-Infrared detector for both spatial and temporal characterization of femtosecond pulses delivered from a femtosecond Erbium Doped Fiber laser (fs-EDFL) @ 1.55 μm, based on the Two Photon Absorption (TPA) process. The capacity of the device was assessed by measuring the spatial beam profile of the fs-EDFL and comparing the experimental results with the theoretical Fresnel diffraction pattern. We also demonstrate the potential of the CMOS Raspberry Pi camera as a wavefront sensor through its a nonlinear response in a Shack-Hartmann array and for the temporal characterization of the femtosecond pulses delivered from the fs-EDFL through TPA Intensity autocorrelation measurements. The direct pulse detection and measurement, through the nonlinear response with a CMOS, is proposed as a novel and affordable high-resolution and high-sensitivity alternative to costly detectors such as CCDs, wavefront sensors and beam profilers @ 1.55 μm. The measured fluence threshold, down to 17.5 μJ/cm 2 , and pJ/pulse energy response represents the lowest reported values applied as a beam profiler and a TPA Shack-Hartmann wavefront sensor, to our knowledge.
UR - https://www.scopus.com/pages/publications/85065524447
U2 - 10.1063/1.5071447
DO - 10.1063/1.5071447
M3 - Article
C2 - 31043009
AN - SCOPUS:85065524447
SN - 0034-6748
VL - 90
JO - Review of Scientific Instruments
JF - Review of Scientific Instruments
IS - 4
M1 - 045116
ER -