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Phase-cycling and double-quantum two-dimensional electronic spectroscopy using a common-path birefringent interferometer

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arxiv 2409.11959 v1 pith:SFQSKBBA submitted 2024-09-18 physics.chem-ph cond-mat.mes-hall

classification physics.chem-phcond-mat.mes-hall
keywords pathwaysphase-cyclingquantumspectroscopybirefringentcollineardouble-quantumelectronic
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Selecting distinct quantum pathways in two-dimensional electronic spectroscopy (2DES) can give particularly deep insights into coherent and incoherent interactions and quantum dynamics in various materials. This includes isolating rephasing and non-rephasing pathways for conventional single-quantum 2DES, but also the ability to record double- and zero-quantum spectra. Such advanced 2DES schemes usually require phase-cycling when performed in a partially or fully collinear geometry. A particularly simple and effective implementation of 2DES utilizes an in-line birefringent interferometer, the Translating-Wedge-based Identical pulses eNcoding System (TWINS), for the generation of an inherently phase-stable collinear excitation pulse pair. Here, we demonstrate how the TWINS can be adapted to allow for phase-cycling and experimental access to isolated quantum pathways. These new capabilities are demonstrated by recording rephasing, non-rephasing, zero-quantum and double-quantum 2DES on a molecular J-aggregate. This easy-to-implement extension opens up new experimental possibilities for TWINS-based 2DES in multidimensional all-optical and photoemission spectroscopy and microscopy.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Two-dimensional electronic spectroscopy of organic semiconductor nanostructures

    cond-mat.mtrl-sci 2024-11 unverdicted novelty 3.0 of 10

    A review of the authors' prior 2DES work on squaraine J-aggregates, claiming plasmon-mediated exciton delocalization and coherent transport, with almost all figures reprinted from earlier papers.

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