| Literature DB >> 35595769 |
Akansha Tyagi1, Mehra S Sidhu1, Ankur Mandal1, Sanjay Kapoor1, Sunil Dahiya1, Jan M Rost2, Thomas Pfeifer3, Kamal P Singh4.
Abstract
We demonstrate a dispersion-free wavefront splitting attosecond resolved interferometric delay line for easy ultrafast metrology of broadband femtosecond pulses. Using a pair of knife-edge prisms, we symmetrically split and later recombine the two wavefronts with a few tens of attosecond resolution and stability and employ a single-pixel analysis of interference fringes with good contrast using a phone camera without any iris or nonlinear detector. Our all-reflective delay line is theoretically analyzed and experimentally validated by measuring 1st and 2nd order autocorrelations and the SHG-FROG trace of a NIR femtosecond pulse. Our setup is compact, offers attosecond stability with flexibility for independent beam-shaping of the two arms. Furthermore, we suggest that our compact and in-line setup can be employed for attosecond resolved pump-probe experiments of matter with few-cycle pulses.Entities:
Year: 2022 PMID: 35595769 PMCID: PMC9122952 DOI: 10.1038/s41598-022-12348-5
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Schematics of all-reflective delay line. M1–M4 : broadband mirrors (650–1100 nm), P1 and P2: Ag coated knife-edge prisms for beam splitting and recombination, PM: Parabolic mirror (f = 25.4 mm), M1 and M2 are placed on the piezo stage. (b) Picture of all-reflective delay line setup. (c) Two non-overlapping micro-plasma spots from individual arms. (d) Overlapped microplasma spots (e) 1st-order fringes corresponding to 800 nm on screen. (f) 2nd-order blue fringes generated by BBO. A spectrometer was used for FROG measurements.
Figure 2(a) Calibration of delay line through interferometric fringes and stability analysis of all-reflective delay line measured with a He-Ne laser nm) over time. (b) Normalized histogram of path delay fluctuation. (c) Experimental and theoretical linear autocorrelation signals. (d) Measured (red) and Retrieved (blue) spectra through first-order interferogram. (e) Experimental SHG non-linear autocorrelation signal using BBO. (f) Experimental and theoretical autocorrelation traces based on Fraunhofer diffraction theory for split profile of the beam for positive delay range (0–60 fs).
Figure 3FROG measurement results (a) Measured SHG-FROG trace with all-reflective delay line. (b) Retrieved FROG trace. (c) Retrieved temporal pulse intensity (left y-axis) and phase (right y-axis). (d) Retrieved spectral intensity (left y-axis) and phase(right y-axis). Dotted red line shows the measured spectrum, same as in Fig. 2d, for comparison.