Investigation of metamagnetism and crystal-field splitting in pseudo-hexagonal CeRh$_3$Si$_2$

(2022)

Authors:

Andrea Amorese, Dmitry Khalyavin, Kurt Kummer, Nicholas B Brookes, Clemens Ritter, Oksana Zaharko, Camilla Buhl Larsen, Orest Pavlosiuk, Adam P Pikul, Dariusz Kaczorowski, Matthias Gutmann, Andrew T Boothroyd, Andrea Severing, Devashibhai T Adroja

Principles of melting in hybrid organic–inorganic perovskite and polymorphic ABX 3 structures

Chemical Science Royal Society of Chemistry (RSC) 13:7 (2022) 2033-2042

Authors:

Bikash Kumar Shaw, Celia Castillo-Blas, Michael F Thorne, María Laura Ríos Gómez, Tom Forrest, Maria Diaz Lopez, Philip A Chater, Lauren N McHugh, David A Keen, Thomas D Bennett

Inhomogeneous spin excitations in weakly coupled spin-1/2 chains

Physical Review Research American Physical Society 4:1 (2022) 013111

Authors:

L Shen, E Campillo, O Zaharko, P Steffens, M Boehm, K Beauvois, B Ouladdiaf, Z He, Dharmalingam Prabhakaran, Andrew Boothroyd, E Blackburn

Abstract:

We present a systematic inelastic neutron scattering and neutron diffraction study on the magnetic structure of the quasi-one-dimensional spin- 1 2 magnet SrCo 2 V 2 O 8 , where the interchain coupling in the Néel-type antiferromagnetic ground state breaks the static spin lattice into two independent domains. At zero magnetic field, we have observed two new spin excitations with small spectral weights inside the gapped region defined by the spinon bound states. In an external magnetic field along the chain axis, the Néel order gets partially destabilized at μ 0 H ★ = 2.0 T and completely suppressed at μ 0 H p = 3.9 T , above which a quantum disordered Tomonaga–Luttinger liquid (TLL) prevails. The low-energy spin excitations between μ 0 H ★ and μ 0 H p are not homogeneous, containing the dispersionless (or weakly dispersive) spinon bound states excited in the Néel phase and the highly dispersive psinon-antipsinon mode characteristic of a TLL. We propose that the two new modes at zero field are spinon excitations inside the domain walls. Since they have a smaller gap than those excited in the Néel domains, the underlying spin chains enter the TLL state via a local quantum phase transition at μ 0 H ★ , making the Néel/TLL coexistence a stable configuration until the excitation gap in the Néel domains closes at μ 0 H p .

Magnetic monopole density and antiferromagnetic domain control in spin-ice iridates

Nature Communications Springer Nature 13:1 (2022) 444

Authors:

Mj Pearce, K Götze, Attila Szabó, Ts Sikkenk, Mr Lees, Andrew Boothroyd, D Prabhakaran, C Castelnovo, Pa Goddard

Abstract:

Magnetically frustrated systems provide fertile ground for complex behaviour, including unconventional ground states with emergent symmetries, topological properties, and exotic excitations. A canonical example is the emergence of magnetic-charge-carrying quasiparticles in spin-ice compounds. Despite extensive work, a reliable experimental indicator of the density of these magnetic monopoles is yet to be found. Using measurements on single crystals of Ho2Ir2O7 combined with dipolar Monte Carlo simulations, we show that the isothermal magnetoresistance is highly sensitive to the monopole density. Moreover, we uncover an unexpected and strong coupling between the monopoles on the holmium sublattice and the antiferromagnetically ordered iridium ions. These results pave the way towards a quantitative experimental measure of monopole density and demonstrate the ability to control antiferromagnetic domain walls using a uniform external magnetic field, a key goal in the design of next-generation spintronic devices.

Neutron powder diffraction study of the phase transitions in deuterated methylammonium lead iodide

Journal of Physics: Condensed Matter IOP Publishing 34:14 (2022) 145401-145401

Authors:

Jiaxun Liu, Juan Du, Anthony E Phillips, Peter B Wyatt, David A Keen, Martin T Dove

Abstract:

Abstract We report the results of a neutron powder diffraction study of the phase transitions in deuterated methylammonium lead iodide, with a focus on the system of orientational distortions of the framework of PbI6 octahedra. The results are analysed in terms of symmetry-adapted lattice strains and normal mode distortions. The higher-temperature cubic–tetragonal phase transition at 327 K is weakly discontinuous and nearly tricritical. The variations of rotation angles and spontaneous strains with temperature are consistent with a standard Landau theory treatment. The lower-temperature transition to the orthorhombic phase at 165 K is discontinuous, with two systems of octahedral rotations and internal distortions that together can be described by 5 order parameters of different symmetry. In this paper we quantify the various symmetry-breaking distortions and their variation with temperature, together with their relationship to the spontaneous strains, within the formalism of Landau theory. A number of curious results in the low-temperature phase are identified, particularly regarding distortion amplitudes that decrease rather than increase with lowering temperature.