Gapless dynamic magnetic ground state in the charge-gapped trimer iridate Ba4NbIr3O12

Author:

Bandyopadhyay Abhisek1ORCID,Lee S.2ORCID,Adroja D. T.13ORCID,Lees M. R.4ORCID,Stenning G. B. G.1,Aich P.55ORCID,Tortora Luca55ORCID,Meneghini C.5ORCID,Cibin G.6,Berlie Adam1ORCID,Saha R. A.7ORCID,Takegami D.89ORCID,Meléndez-Sans A.8ORCID,Poelchen G.8,Yoshimura M.10,Tsuei K. D.10,Hu Z.8,Chan Ting-Shan10ORCID,Chattopadhyay S.11ORCID,Thakur G. S.12,Choi Kwang-Yong13ORCID

Affiliation:

1. ISIS Neutron and Muon Source

2. Institute for Basic Science

3. University of Johannesburg

4. University of Warwick

5. Università Roma Tre

6. Diamond Light Source

7. KU Leuven

8. Max Planck Institute for Chemical Physics of Solids

9. Waseda University

10. National Synchrotron Radiation Research Center

11. UGC-DAE Consortium for Scientific Research

12. Indian Institute of Science Education and Research, Berhampur

13. Sungkyunkwan University

Abstract

We present an experimental investigation of the magnetic ground state in Ba4NbIr3O12, a fractional valent trimer iridate. X-ray absorption and photoemission spectroscopy show that the Ir valence lies between 3+ and 4+ while Nb is pentavalent. Combined dc/ac magnetization, specific heat, and muon spin rotation/relaxation (µSR) measurements reveal no magnetic phase transition down to 0.05 K. Despite a significant Weiss temperature (ΘW15 to 25 K) indicating antiferromagnetic correlations, a quantum spin-liquid (QSL) phase emerges and persists down to 0.1 K. This state likely arises from geometric frustration in the edge-sharing equilateral triangle Ir network. Our µSR analysis reveals a two-component depolarization, arising from the coexistence of rapidly (90%) and slowly (10%) fluctuating Ir moments. Powder x-ray diffraction and Ir-L3edge x-ray absorption fine structure spectroscopy identify 8–10% Nb/Ir site-exchange, reducing frustration within part of the Ir network, and likely leading to the faster muon spin relaxation, while the structurally ordered Ir ions remain highly geometrically frustrated, giving rise to the rapidly spin-fluctuating QSL ground state. At low temperatures, the magnetic specific heat varies as γT+αT2, indicating gapless spinon excitations, and possible Dirac QSL features with linear spinon dispersion, respectively. Published by the American Physical Society 2024

Funder

Engineering and Physical Sciences Research Council

Deutsche Forschungsgemeinschaft

Diamond Light Source

National Research Foundation of Korea

Publisher

American Physical Society (APS)

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