All-Optical Reconstruction of Crystal Band Structure

The band structure of matter determines its properties. In solids, it is typically mapped with angle-resolved photoemission spectroscopy, in which the momentum and the energy of incoherent electrons are independently measured. Sometimes, however, photoelectrons are difficult or impossible to detect....

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Veröffentlicht in:Physical review letters 2015-11, Vol.115 (19), p.193603-193603, Article 193603
Hauptverfasser: Vampa, G, Hammond, T J, Thiré, N, Schmidt, B E, Légaré, F, McDonald, C R, Brabec, T, Klug, D D, Corkum, P B
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container_end_page 193603
container_issue 19
container_start_page 193603
container_title Physical review letters
container_volume 115
creator Vampa, G
Hammond, T J
Thiré, N
Schmidt, B E
Légaré, F
McDonald, C R
Brabec, T
Klug, D D
Corkum, P B
description The band structure of matter determines its properties. In solids, it is typically mapped with angle-resolved photoemission spectroscopy, in which the momentum and the energy of incoherent electrons are independently measured. Sometimes, however, photoelectrons are difficult or impossible to detect. Here we demonstrate an all-optical technique to reconstruct momentum-dependent band gaps by exploiting the coherent motion of electron-hole pairs driven by intense midinfrared femtosecond laser pulses. Applying the method to experimental data for a semiconductor ZnO crystal, we identify the split-off valence band as making the greatest contribution to tunneling to the conduction band. Our new band structure measurement technique is intrinsically bulk sensitive, does not require a vacuum, and has high temporal resolution, making it suitable to study reactions at ambient conditions, matter under extreme pressures, and ultrafast transient modifications to band structures.
doi_str_mv 10.1103/PhysRevLett.115.193603
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subjects Band structure of solids
Coherence
Crystal structure
Crystals
Energy gaps (solid state)
Femtosecond
Lasers
Semiconductors
title All-Optical Reconstruction of Crystal Band Structure
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