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001044579 037__ $$aFZJ-2025-03259
001044579 1001_ $$0P:(DE-Juel1)203359$$aHeinze, Leonie$$b0$$ufzj
001044579 1112_ $$aAPS Global Physics Summit$$cAnaheim$$d2025-03-16 - 2025-03-21$$wUSA
001044579 245__ $$aQuantum criticality and dimensional reduction of a sawtooth chain material: a case study
001044579 260__ $$c2025
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001044579 520__ $$aQuantum magnets with geometrical frustration stand out due to their highly degenerate ground states and their susceptibility to be tuned regarding their effective dimensionality by applying pressure or magnetic field [1]. Such tuning can lead to quantum phase transitions from ordered to disordered states, or vice versa, with the emergent quantum critical points (QCPs) determining the deformed entropy landscapes in the respective phase diagrams. While, in general, there is a fundamental interest in using the properties arising from such distorted entropy landscapes for applications (e.g. the magnetocaloric effect for low-temperature cooling [2,3]), I address here the role of residual exchange interactions in real materials. I demonstrate that a QCP can develop on a lower effective energy scale measured against the leading exchange couplings in the system.In this talk, I present a case study on the mineral atacamite Cu$_2$Cl(OH)$_3$, a sawtooth-chain compound where the chain units [J ~ 336 K (basal-basal), J’ ~ 102 K (basal-apical)] are embedded into a weak three-dimensional network of interchain couplings [4]. I will show that the magnetic phase diagram of atacamite contains a field-induced quantum critical point at 21.9(1) T (H || c axis) which emerges on a much lower energy scale compared to the leading terms in the spin Hamiltonian derived by means of density-functional theory [4,5]. Further, the QCP separates field regions with and without long-range magnetic order. In the latter, underpinned by numerical results, the sawtooth chains decompose into two independent subunits, but far away from full field polarization of the material [5].
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001044579 536__ $$0G:(DE-HGF)POF4-632$$a632 - Materials – Quantum, Complex and Functional Materials (POF4-632)$$cPOF4-632$$fPOF IV$$x1
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001044579 65027 $$0V:(DE-MLZ)SciArea-170$$2V:(DE-HGF)$$aMagnetism$$x1
001044579 65017 $$0V:(DE-MLZ)GC-1604-2016$$2V:(DE-HGF)$$aMagnetic Materials$$x0
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001044579 9141_ $$y2025
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