The BiCr(0.5)Ni(0.5)O(3) perovskite has been obtained at high pressure. Neutron and synchrotron diffraction data show a Pnma orthorhombic structure with a = 5.5947(1) Å, b = 7.7613(1) Å, and c = 5.3882(1) Å at 300 K and random B-site Cr/Ni distribution. Electron diffraction reveals an incommensurate modulation parallel to the b axis. The combination of either Cr-O-Ni (J > 0) or Cr-O-Cr/Ni-O-Ni (J < 0) nearest-neighbor spin interactions results in a random-bond spin-glass configuration. Magnetization, neutron diffraction, and muon-spin-relaxation measurements demonstrate that variations in the local bonding and charge states contribute to the magnetic frustration.

Download full-text PDF

Source
http://dx.doi.org/10.1021/ic502012pDOI Listing

Publication Analysis

Top Keywords

incommensurate modulation
8
spin-glass behavior
4
behavior incommensurate
4
modulation high-pressure
4
high-pressure perovskite
4
perovskite bicr05ni05o3
4
bicr05ni05o3 bicr05ni05o3
4
bicr05ni05o3 perovskite
4
perovskite high
4
high pressure
4

Similar Publications

Excellent Energy Storage and Charge-Discharge Performance in (PbCa)(ZrSn)O Antiferroelectric Ceramics.

ACS Appl Mater Interfaces

January 2025

State Key Laboratory of Precision Electronic Manufacturing Technology and Equipment, Guangdong Provincial Research Center on Smart Materials and Energy Conversion Devices, Guangdong Provincial Key Laboratory of Functional Soft Condensed Matter, School of Materials and Energy, School of Electromechanical Engineering and School of Integrated Circuits, Guangdong University of Technology, Guangzhou 510006, China.

Lead-based antiferroelectric (AFE) ceramics have the advantages of high power density, fast charge and discharge speed, and the electric-field-induced AFE-FE phase transition, making them one of the potential dielectric energy storage materials. However, the energy storage density still needs to be improved. In this work, (PbCa) (ZrSn)O (PCZS, = 0.

View Article and Find Full Text PDF

Charge-density waves (CDWs) are correlated states of matter, in which the electronic density is modulated periodically due to electronic and phononic interactions. Often, CDW phases coexist with other correlated states, such as superconductivity, spin-density waves, or Mott insulators. Controlling CDW phases may, therefore, enable the manipulation of the energy landscape of these interacting states.

View Article and Find Full Text PDF

We study dynamical localization in an ultracold atom confined in an optical lattice that is simultaneously shaken by two competing pulsatile modulations with different amplitudes, periods, and waveforms. The effects of finite-width time pulses, modulation waveforms, and commensurable and incommensurable driving periods are investigated. We describe a particularly complex scenario and conclude that dynamical localization can survive, or even increase, when a periodic modulation is replaced by a quasiperiodic one of equal amplitude.

View Article and Find Full Text PDF
Article Synopsis
  • High-temperature superconducting cuprates exhibit unique patterns of spin and charge orders that interact with superconductivity in complex ways.
  • Research using advanced quantum Monte Carlo simulations reveals that these patterns change differently depending on the material and temperature, particularly with varying charge transfer energy and doping levels.
  • The study concludes that charge modulations become less correlated with spin modulations as doping increases, aligning with experimental results, and suggests that high-temperature charge correlations differ from low-temperature stripe orders.
View Article and Find Full Text PDF

Tunable Mirror-Symmetric Type-III Ising Superconductivity in Atomically-Thin Natural Van der Waals Heterostructures.

Adv Mater

December 2024

School of Physics, and State Key Laboratory of Silicon Materials and Advanced Semiconductor Materials, Zhejiang University, Hangzhou, 310027, China.

Article Synopsis
  • Van der Waals (vdW) crystals with strong spin-orbit coupling are key for discovering unique 2D superconductors, where new pairing states arise from the combination of various factors like SOC and crystal structure.
  • The study highlights a mirror-symmetry protected Ising pairing state in a heterostructure of SnSe and TaSe, where the arrangement of the lattice helps minimize interference from certain pairing mechanisms.
  • The findings indicate that these vdW heterostructures can enhance the critical temperature under specific magnetic fields, which does not occur in other multilayer configurations due to a loss of mirror symmetry.
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!