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Lihua Yin

Researcher at Chinese Academy of Sciences

Publications -  29
Citations -  437

Lihua Yin is an academic researcher from Chinese Academy of Sciences. The author has contributed to research in topics: Dielectric & Magnetization. The author has an hindex of 11, co-authored 29 publications receiving 331 citations.

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Giant magnetocaloric effect and temperature induced magnetization jump in GdCrO3 single crystal

TL;DR: In this article, a single-crystal GdCrO3 was studied and various novel magnetic features, such as temperature-induced magnetization reversal (TMR), temperature induced magnetization jump (TMJ), spin reorientation, and giant magnetocaloric effect (MCE), were reported.
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Role of rare earth ions in the magnetic, magnetocaloric and magnetoelectric properties of RCrO3 (R = Dy, Nd, Tb, Er) crystals

TL;DR: In this article, a systematic study on the magnetic, magnetocaloric (MC), specific heat and magnetoelectric (ME) properties of the single crystals of rare-earth orthochromites, RCrO3 (R = Dy, Nd, Er, Tb).
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Magnetocaloric effect and influence of Fe/Cr disorder on the magnetization reversal and dielectric relaxation in RFe0.5Cr0.5O3 systems

TL;DR: In this paper, structural, magnetic, and dielectric properties of RFe0.5Cr 0.5O3 compounds have been investigated and it has been shown that the competition between the moments of the two clusters gives rise to the R-dependent temperature induced magnetization reversal.
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Reentrant spin glass behavior and magnetodielectric coupling of an Ir-based double perovskite compound, La2CoIrO6.

TL;DR: The structural, magnetic, electrical and dielectric properties of an Ir-based double perovskite compound, La2CoIrO6, have been investigated and it is shown that a clear magnetodielectric coupling effect exists in La2 coirO6 at low temperatures.
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Multiferroic and magnetoelectric properties of Bi1−xBaxFe1−xMnxO3 system

TL;DR: In this paper, a multiferroic compound Bi0.8Ba0.2Fe 0.8Mn 0.2O3 was synthesized by conventional solid-state reaction and X-ray diffraction showed that Bi1−xBaxFe 1−xMnxO3 is single phase up to x = 0.4.