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Published on: March 24, 2019
Strain-driven enhancement of magnetic frustration in quantum spin-liquid TbInO3thin films
Riya Pathak1,2, Manisha Bansal1, Saikarthikey Bhat1
1School of Physics, Indian Institute of Science Education and Research Thiruvananthapuram, Thiruvananthapuram, Kerala 695551, India.
Abstract:
Quantum spin-liquid (QSL) ground state emerges in frustrated magnetic systems where competing interactions suppress long-range magnetic ordering. TbInO3, a hexagonal perovskite, shows QSL behaviour due to geometrical frustration and strong spin-orbit coupling present in it. Here, we report the strain-driven modification of the magnetic ground state and the enhancement of magnetic frustration at milli-Kelvin (mK) temperature (<1 K) in the TbInO3epitaxial thin film, grown on MgO (100) substrate. We observe a Curie-Weiss crossover at 1-30 K temperature, strong antiferromagnetic interactions, along with the absence of long-range ordering down to 400 mK, consistent with a QSL ground state. Notably, the thin film exhibits a significantly enhanced effective moment in the mK range compared to the bulk, attributed to strain-induced modification of the exchange pathway among Tb3+ions. This impact broadens the QSL state's temperature range to lower temperatures and enhances magnetic frustration in the temperature-field phase space. Further, the first-principles calculation also supports the enhancement of frustration in thin film. These findings demonstrate that strain-induced tuning of exchange interactions can enhance the magnetic frustration, offering a route to stabilise QSL phases down to lower temperatures in hexagonal perovskite thin films.
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