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Dephasing of quantum tunnelling in molecular nanomagnets

Dephasing of quantum tunnelling in molecular nanomagnets
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摘要 Dephasing mechanism of quantum tunnelling in molecular magnets has been studied by means of the spin-coherentstate path integral in a mean field approximation. It is found that the fluctuating uncompensated transverse field from the dipolar-dipolar interaction between molecular magnets contributes a random phase to the quantum interference phase. The resulting transition rate is determined by the average tunnel splitting over the random phase. Such a dephasing process leads to the suppression of quenching due to the quantum phase interference, and to the steps due to odd resonances in hysteresis loop survived, which is in good agreement with experimental observations in molecular nanomagnets Fes and Mn12. Dephasing mechanism of quantum tunnelling in molecular magnets has been studied by means of the spin-coherentstate path integral in a mean field approximation. It is found that the fluctuating uncompensated transverse field from the dipolar-dipolar interaction between molecular magnets contributes a random phase to the quantum interference phase. The resulting transition rate is determined by the average tunnel splitting over the random phase. Such a dephasing process leads to the suppression of quenching due to the quantum phase interference, and to the steps due to odd resonances in hysteresis loop survived, which is in good agreement with experimental observations in molecular nanomagnets Fes and Mn12.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2008年第4期1436-1442,共7页 中国物理B(英文版)
基金 Project supported by the National Natural Science Foundation of China (Grant No 10575045)
关键词 single molecule magnet quantum tunnelling DEPHASING single molecule magnet, quantum tunnelling, dephasing
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参考文献28

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