Ultrafast terahertz emission from emerging symmetry-broken materials

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作者
Jacob Pettine
Prashant Padmanabhan
Nicholas Sirica
Rohit P. Prasankumar
Antoinette J. Taylor
Hou-Tong Chen
机构
[1] Los Alamos National Laboratory,Center for Integrated Nanotechnologies
[2] Deep Science Fund,undefined
[3] Intellectual Ventures,undefined
来源
Light: Science & Applications | / 12卷
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摘要
Nonlinear optical spectroscopies are powerful tools for investigating both static material properties and light-induced dynamics. Terahertz (THz) emission spectroscopy has emerged in the past several decades as a versatile method for directly tracking the ultrafast evolution of physical properties, quasiparticle distributions, and order parameters within bulk materials and nanoscale interfaces. Ultrafast optically-induced THz radiation is often analyzed mechanistically in terms of relative contributions from nonlinear polarization, magnetization, and various transient free charge currents. While this offers material-specific insights, more fundamental symmetry considerations enable the generalization of measured nonlinear tensors to much broader classes of systems. We thus frame the present discussion in terms of underlying broken symmetries, which enable THz emission by defining a system directionality in space and/or time, as well as more detailed point group symmetries that determine the nonlinear response tensors. Within this framework, we survey a selection of recent studies that utilize THz emission spectroscopy to uncover basic properties and complex behaviors of emerging materials, including strongly correlated, magnetic, multiferroic, and topological systems. We then turn to low-dimensional systems to explore the role of designer nanoscale structuring and corresponding symmetries that enable or enhance THz emission. This serves as a promising route for probing nanoscale physics and ultrafast light-matter interactions, as well as facilitating advances in integrated THz systems. Furthermore, the interplay between intrinsic and extrinsic material symmetries, in addition to hybrid structuring, may stimulate the discovery of exotic properties and phenomena beyond existing material paradigms.
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[11]  
Takasan K(2023)Current-induced second harmonic generation in inversion-symmetric Dirac and Weyl semimetals Nat. Rev. Phys. 5 170-69
[12]  
Orenstein J(2004)Topology and symmetry of quantum materials via nonlinear optical responses Chem. Rev. 104 1759-1479
[13]  
Ma Q(1996)Photocurrent as a multiphysics diagnostic of quantum materials Appl. Phys. Lett. 69 2321-2546
[14]  
Schmuttenmaer CA(2017)Exploring dynamics in the far-infrared with terahertz spectroscopy Opt. Eng. 56 010901-907
[15]  
Nahata A(1998)A wideband coherent terahertz spectroscopy system using optical rectification and electro-optic sampling Opt. Lett. 23 67-350
[16]  
Weling AS(2018)Review of terahertz photoconductive antenna technology J. Appl. Phys. 124 231101-1013
[17]  
Heinz TF(2015)Detection of freely propagating terahertz radiation by use of optical second-harmonic generation J. Mod. Opt. 62 1447-188
[18]  
Burford NM(2013)Tutorial: an introduction to terahertz time domain spectroscopy (THz-TDS) N. J. Phys. 15 025039-5537
[19]  
El-Shenawee MO(2017)A review of non-linear terahertz spectroscopy with ultrashort tabletop-laser pulses Phys. Rev. Lett. 118 207204-4947
[20]  
Nahata A(1994)Ultrafast two-dimensional terahertz spectroscopy of elementary excitations in solids J. Opt. Soc. Am. B 11 2533-4239