A preliminary study of using greener materials including deep eutectic solvents (DESs) for the cleaning of silver tarnish

Journal of Cultural Heritage Elsevier BV 76 (2025) 126-135

Authors:

Qing Wu, Jack Harrison, Patrycja Janina Petrasz, Lidia Mathys, Edith Joseph

Room temperature control of axial and basal antiferromagnetic anisotropies using strain

(2025)

Authors:

Jack Harrison, Junxiong Hu, Charles Godfrey, Jheng-Cyuan Lin, Tim A Butcher, J脙 rg Raabe, Simone Finizio, Hariom Jani, Paolo G Radaelli

MULTIXS: A new scanning multi-analyzer x-ray emission spectrometer at the GALAXIES beamline at synchrotron SOLEIL.

The Review of scientific instruments 96:5 (2025) 053104

Authors:

James M Ablett, Anthony Berlioux, Dominique Prieur, Jack Harrison, Lars Heller, Sebastian Gliga, Jean-Pascal Rueff

Abstract:

We present the design and performance of a new multi-crystal x-ray emission spectrometer installed at the GALAXIES beamline at Synchrotron SOLEIL. The new instrument, which we name "MULTIXS," can host up to five analyzer crystals and supersedes our previous XES spectrometer design, providing a compact, simple design with all the analyzer crystals contained in the horizontal sample plane. This feature provides a direct view of the sample area and avoids the potential masking of the sample for constrained sample environments. This new design allows for the use of both 0.5聽m and 1聽m radius spherical analyzer crystals. In addition, the ability to continuously scan the spectrometer energy provides relatively fast scanning with high quality emission data and minimum dead-time overhead.

Electromechanically reconfigurable terahertz stereo metasurfaces

Advanced Materials Wiley (2024) 2402069

Authors:

Saurav Prakash, Prakash Pitchappa, Piyush Agrawal, Hariom Jani, Yunshan Zhao, Abhishek Kumar, John Thong, Jian Linke, Ariando Ariando, Ranjan Singh, Thirumalai Venkatesan

Abstract:

Dynamic terahertz devices are vital for the next generation of wireless communication, sensing, and non-destructive imaging technologies. Metasurfaces have emerged as a paradigm-shifting platform, offering varied functionalities, miniaturization, and simplified fabrication compared to their 3D counterparts. However, the presence of in-plane mirror symmetry and reduced degree of freedom impose fundamental limitations on achieving advanced chiral response, beamforming, and reconfiguration capabilities. In this work, a platform composed of electrically actuated resonators that can be colossally reconfigured between planar and 3D geometries is demonstrated. To illustrate the platform, metadevices with 3D Split Ring Resonators are fabricated, wherein two counteracting driving forces are combined: i) folding induced by stress mismatch, which enables non-volatile state design and ii) unfolding triggered by the strain associated with insulator-to-metal transition in VO2, which facilitates volatile structural reconfiguration. This large structural reconfiguration space allows for resonance mode switching, widely tunable magnetic and electric polarizabilities, and increased frequency agility. Moreover, the unique properties of VO2, such as the hysteretic nature of its phase transition is harnessed to demonstrate a multi-state memory. Therefore, these VO2 integrated metadevices are highly attractive for the realization of 6G communication devices such as reconfigurable intelligent surfaces, holographic beam formers, and spatial light modulators.

Holographic imaging of antiferromagnetic domains with in-situ magnetic field

Optics Express Optica Publishing Group 32:4 (2024) 5885-5897

Authors:

Jack Harrison, Hariom Jani, Junxiong Hu, Manohar Lal, Jheng-Cyuan Lin, Horia Popescu, Jason Brown, Nicolas Jaouen, A Ariando, Paolo G Radaelli

Abstract:

Lensless coherent x-ray imaging techniques have great potential for high-resolution imaging of magnetic systems with a variety of in-situ perturbations. Despite many investigations of ferromagnets, extending these techniques to the study of other magnetic materials, primarily antiferromagnets, is lacking. Here, we demonstrate the first (to our knowledge) study of an antiferromagnet using holographic imaging through the 'holography with extended reference by autocorrelation linear differential operation' technique. Energy-dependent contrast with both linearly and circularly polarized x-rays are demonstrated. Antiferromagnetic domains and topological textures are studied in the presence of applied magnetic fields, demonstrating quasi-cyclic domain reconfiguration up to 500 mT.