Quasi-1D monolayers of parallel atomic chains are predicted to be altermagnets when inter-chain coupling is ferromagnetic, and to switch to antiferromagnetic nodal-line semiconductors when the inter-chain spacing is changed.
Ubiquitous van der Waals altermagnetism with sliding/moire ferroelectricity
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abstract
According to the recent studies on sliding/moire ferroelectricity, most 2D van der Waals nonferroelectric monolayers can become ferroelectric via multilayer stacking. In this paper we propose that similar strategy can be used to induce desirable van der Waals altermagnetism with symmetry-compensated collinear magnetic orders and non-relativistic spin splitting. Our first-principles calculations show the pervasive co-existence of sliding ferroelectricity and altermagnetism in a series of magnetic multilayers with anti-parallel stacking configurations. Upon a twist angle in bilayers, moire ferroelectricity can be combined with altermagnetism, while some untwisted bilayers exhibit pseudo-altermagnetism with zero net magnetizations and non-relativistic spin splittings coupled with sliding ferroelectricity. Our study significantly expands the scope of altermagnetism, and its combination with sliding/moire ferroelectricity brings in new physics as well as promising applications, which should stimulate further experimental efforts.
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cond-mat.mtrl-sci 1years
2025 1verdicts
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Tunable altermagnetism via inter-chain engineering in parallelassembled atomic chains
Quasi-1D monolayers of parallel atomic chains are predicted to be altermagnets when inter-chain coupling is ferromagnetic, and to switch to antiferromagnetic nodal-line semiconductors when the inter-chain spacing is changed.