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1.
Nano Lett ; 24(20): 6031-6037, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38717626

ABSTRACT

Manipulating the polarization of light at the nanoscale is key to the development of next-generation optoelectronic devices. This is typically done via waveplates using optically anisotropic crystals, with thicknesses on the order of the wavelength. Here, using a novel ultrafast electron-beam-based technique sensitive to transient near fields at THz frequencies, we observe a giant anisotropy in the linear optical response in the semimetal WTe2 and demonstrate that one can tune the THz polarization using a 50 nm thick film, acting as a broadband wave plate with thickness 3 orders of magnitude smaller than the wavelength. The observed circular deflections of the electron beam are consistent with simulations tracking the trajectory of the electron beam in the near field of the THz pulse. This finding offers a promising approach to enable atomically thin THz polarization control using anisotropic semimetals and defines new approaches for characterizing THz near-field optical response at far-subwavelength length scales.

2.
J Strength Cond Res ; 36(6): 1618-1621, 2022 Jun 01.
Article in English | MEDLINE | ID: mdl-32604150

ABSTRACT

ABSTRACT: Folk, AL, Garcia, CA, Whitney, SH, and Kovacs, SJ. Relationship between strength and conditioning assessments and rowing performance in female collegiate athletes. J Strength Cond Res 36(6): 1618-1621, 2022-The purpose of this study was to examine the relationship between strength and conditioning variables and rowing performance, as measured by a 2000 m ergometer time, in female collegiate rowers. Twenty-four female collegiate rowers qualified for this study by completing both types of assessments and a demographic questionnaire. Pearson correlation coefficients (r) were used to determine the association between the total 2000 m ergometer time and each strength and conditioning assessment. The assessments included a 1 repetition maximum (1RM) squat and a 1RM hang clean. After this, all significant correlations were placed in a stepwise linear regression analysis to predict the total 2000 m ergometer time. The 1RM squat and 1RM hang clean correlated with 2000 m ergometer performance (p = 0.034 and p = 0.002, respectively). Only the 1RM squat emerged as a predictor of 2000 m ergometer performance. This study highlights that the 1RM squat may be a way to predict rowing performance and build successful female collegiate rowing teams.


Subject(s)
Athletic Performance , Water Sports , Athletes , Ergometry , Exercise Test , Female , Humans , Muscle Strength
3.
Nat Commun ; 12(1): 4799, 2021 Aug 10.
Article in English | MEDLINE | ID: mdl-34376659

ABSTRACT

As conductors in electronic applications shrink, microscopic conduction processes lead to strong deviations from Ohm's law. Depending on the length scales of momentum conserving (lMC) and relaxing (lMR) electron scattering, and the device size (d), current flows may shift from ohmic to ballistic to hydrodynamic regimes. So far, an in situ methodology to obtain these parameters within a micro/nanodevice is critically lacking. In this context, we exploit Sondheimer oscillations, semi-classical magnetoresistance oscillations due to helical electronic motion, as a method to obtain lMR even when lMR ≫ d. We extract lMR from the Sondheimer amplitude in WP2, at temperatures up to T ~ 40 K, a range most relevant for hydrodynamic transport phenomena. Our data on µm-sized devices are in excellent agreement with experimental reports of the bulk lMR and confirm that WP2 can be microfabricated without degradation. These results conclusively establish Sondheimer oscillations as a quantitative probe of lMR in micro-devices.

4.
Nat Mater ; 20(3): 293-300, 2021 Mar.
Article in English | MEDLINE | ID: mdl-33139890

ABSTRACT

The study of topology as it relates to physical systems has rapidly accelerated during the past decade. Critical to the realization of new topological phases is an understanding of the materials that exhibit them and precise control of the materials chemistry. The convergence of new theoretical methods using symmetry indicators to identify topological material candidates and the synthesis of high-quality single crystals plays a key role, warranting discussion and context at an accessible level. This Perspective provides a broad introduction to topological phases, their known properties, and material realizations. We focus on recent work in topological Weyl and Dirac semimetals, with a particular emphasis on magnetic Weyl semimetals and emergent fermions in chiral crystals and their extreme responses to excitations, and we highlight areas where the field can continue to make remarkable discoveries. We further examine open questions and directions for the topological materials science community to pursue, including exploration of non-equilibrium properties of Weyl semimetals and cavity-dressed topological materials.

5.
Nano Lett ; 20(3): 1923-1927, 2020 Mar 11.
Article in English | MEDLINE | ID: mdl-32073859

ABSTRACT

Objects around us constantly emit and absorb thermal radiation. The emission and absorption processes are governed by two fundamental radiative properties: emissivity and absorptivity. For reciprocal systems, the emissivity and absorptivity are restricted to be equal by Kirchhoff's law of thermal radiation. This restriction limits the degree of freedom to control thermal radiation and contributes to an intrinsic loss mechanism in photonic energy harvesting systems. Existing approaches to violate Kirchhoff's law typically utilize magneto-optical effects with an external magnetic field. However, these approaches require either a strong magnetic field (∼3T) or narrow-band resonances under a moderate magnetic field (∼0.3T), because the nonreciprocity in conventional magneto-optical effects is weak in the thermal wavelength range. Here, we show that the axion electrodynamics in magnetic Weyl semimetals can be used to construct strongly nonreciprocal thermal emitters that nearly completely violate Kirchhoff's law over broad angular and frequency ranges without requiring any external magnetic field.

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