TY - JOUR
T1 - Significant thermal rectification induced by phonon mismatch of functional groups in a single-molecule junction
AU - Hua, Renjie
AU - Jiang, Yunlei
AU - Shi, Lei
AU - Liang, Suxia
AU - Zhang, Chi
AU - Song, Yingru
AU - Dong, Ruo Yu
AU - Dong, Yuan
N1 - Publisher Copyright:
© 2023 IOP Publishing Ltd.
PY - 2024/4/3
Y1 - 2024/4/3
N2 - Single-molecule junctions (SMJs) may bring exotic physical effects. In this work, a significant thermal rectification effect is observed in a cross-dimensional system, comprising a diamond, a single-molecule junction, and a carbon nanotube (CNT). The molecular dynamics simulations indicate that the interfacial thermal resistance varies with the direction of heat flow, the orientation of the crystal planes of the diamond, and the length of the CNT. We find that the thermal rectification ratio escalates with the length of the CNT, achieving a peak value of 730% with the CNT length of 200 nm. A detailed analysis of phonon vibrations suggests that the primary cause of thermal rectification is the mismatched vibrations between the biphenyl and carbonyl groups. This discovery may offer theoretical insights for both the experimental exploration and practical application of SMJs in efficient thermal management strategy for high power and highly integrated chips.
AB - Single-molecule junctions (SMJs) may bring exotic physical effects. In this work, a significant thermal rectification effect is observed in a cross-dimensional system, comprising a diamond, a single-molecule junction, and a carbon nanotube (CNT). The molecular dynamics simulations indicate that the interfacial thermal resistance varies with the direction of heat flow, the orientation of the crystal planes of the diamond, and the length of the CNT. We find that the thermal rectification ratio escalates with the length of the CNT, achieving a peak value of 730% with the CNT length of 200 nm. A detailed analysis of phonon vibrations suggests that the primary cause of thermal rectification is the mismatched vibrations between the biphenyl and carbonyl groups. This discovery may offer theoretical insights for both the experimental exploration and practical application of SMJs in efficient thermal management strategy for high power and highly integrated chips.
KW - carbon nanotube (CNT)
KW - functional groups
KW - single-molecule junction (SMJ)
KW - thermal management
KW - thermal rectification
UR - https://www.scopus.com/pages/publications/85181114045
U2 - 10.1088/1361-648X/ad15c5
DO - 10.1088/1361-648X/ad15c5
M3 - 文章
C2 - 38096577
AN - SCOPUS:85181114045
SN - 0953-8984
VL - 36
JO - Journal of Physics Condensed Matter
JF - Journal of Physics Condensed Matter
IS - 13
M1 - 135401
ER -