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Ultrafast photoconductivity and terahertz vibrational dynamics in double-helix SnIP nanowires

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arxiv 2101.05459 v1 pith:75PJMYYN submitted 2021-01-14 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords snipmaterialmobilitycarrierchargedouble-helixdynamicsflexible
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Tin iodide phosphide (SnIP), an inorganic double-helix material, is a quasi-1D van der Waals semiconductor that shows promise in photocatalysis and flexible electronics. However, our understanding of the fundamental photophysics and charge transport dynamics of this new material is limited. Here, we use time-resolved terahertz (THz) spectroscopy to probe the transient photoconductivity of SnIP nanowire films and, with insight into the highly anisotropic electronic structure from quantum chemical calculations, measure an electron mobility as high as 280 $cm^2V^{-1}s^{-1}$. Additionally, the THz vibrational spectrum reveals a photoexcitation-induced charge redistribution that reduces the amplitude of a twisting mode of the outer SnI helix on picosecond timescales. Finally, we show that the carrier lifetime and mobility are limited by a trap density greater than $10^{18}\,cm^{-3}$. Our results provide insight into the optical excitation and relaxation pathways of SnIP and demonstrate a remarkably high carrier mobility for such a soft and flexible material.

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