TY - JOUR
T1 - Thermal transport manipulated by vortex domain walls in bulk h-ErMnO3
AU - Pang, Yu
AU - Li, Yongheng
AU - Gao, Ziyan
AU - Qian, Xin
AU - Wang, Xueyun
AU - Hong, Jiawang
AU - Jiang, Puqing
N1 - Publisher Copyright:
© 2023
PY - 2023/2
Y1 - 2023/2
N2 - Topological defects such as structural vortex domain walls (DWs), which induce many intriguing properties and associated physical phenomena in multiferroics, also provide a platform for manipulating thermal transport. Here, we employ time-domain thermoreflectance (TDTR) to study the thermal conductivity of bulk h-ErMnO3 single crystals with different vortex DWs over a wide temperature range. We find that the vortex DWs can effectively and synergistically suppress the thermal conductivity along (κc) and perpendicular (κab) to the c-axis of h-ErMnO3 single crystals. A phonon scattering model is utilized to explain the mechanism of thermal transport manipulated by vortex DWs. This model yields the intrinsic thermal conductivity and the effective phonon mean free path (MFP) of h-ErMnO3. The model also manifests that vortex DWs achieve a maximum reduction of ∼28% for the room-temperature thermal conductivity against the single-domain case. The reduction becomes more significant with decreasing temperature due to the longer effective MFP at lower temperatures, both proved experimentally by the cryogenic experiment and theoretically based on the proposed phonon scattering model. These findings not only provide an essential understanding of heat transport in multiferroics with vortex DWs but also pave the way for their application in next-generation ferroelectric devices.
AB - Topological defects such as structural vortex domain walls (DWs), which induce many intriguing properties and associated physical phenomena in multiferroics, also provide a platform for manipulating thermal transport. Here, we employ time-domain thermoreflectance (TDTR) to study the thermal conductivity of bulk h-ErMnO3 single crystals with different vortex DWs over a wide temperature range. We find that the vortex DWs can effectively and synergistically suppress the thermal conductivity along (κc) and perpendicular (κab) to the c-axis of h-ErMnO3 single crystals. A phonon scattering model is utilized to explain the mechanism of thermal transport manipulated by vortex DWs. This model yields the intrinsic thermal conductivity and the effective phonon mean free path (MFP) of h-ErMnO3. The model also manifests that vortex DWs achieve a maximum reduction of ∼28% for the room-temperature thermal conductivity against the single-domain case. The reduction becomes more significant with decreasing temperature due to the longer effective MFP at lower temperatures, both proved experimentally by the cryogenic experiment and theoretically based on the proposed phonon scattering model. These findings not only provide an essential understanding of heat transport in multiferroics with vortex DWs but also pave the way for their application in next-generation ferroelectric devices.
KW - Multiferroic hexagonal manganites
KW - Phonon scattering model
KW - Thermal conductivity
KW - Time domain thermoreflectance
KW - Vortex domain walls
UR - http://www.scopus.com/inward/record.url?scp=85147252010&partnerID=8YFLogxK
U2 - 10.1016/j.mtphys.2023.100972
DO - 10.1016/j.mtphys.2023.100972
M3 - Article
AN - SCOPUS:85147252010
SN - 2542-5293
VL - 31
JO - Materials Today Physics
JF - Materials Today Physics
M1 - 100972
ER -