The Quantum Entanglement Dynamics Induced by Non-Linear Interaction between a Moving Nano Molecule and a Two-Mode Field with Two-Photon Transitions Using Reduced Von Neumann Entropy and Jaynes-Cummings Model for Human Cancer Cells, Tissues and Tumors Diagnosis

The Quantum Entanglement Dynamics Induced by Non-Linear Interaction between a Moving Nano Molecule and a Two-Mode Field with Two-Photon Transitions Using Reduced Von Neumann Entropy and Jaynes-Cummings Model for Human Cancer Cells, Tissues and Tumors Diagnosis
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移动纳米分子与具有双光子跃迁的双模式场之间的非线性相互作用引起的量子纠缠动力学,使用简化的冯诺依曼熵和 Jaynes-Cummings 模型进行人类癌细胞、组织和肿瘤诊断

DOI:
10.23937/2474-3674/1510071
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发表时间:
2019
期刊:
International Journal of Critical Care and Emergency Medicine
影响因子:
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通讯作者:
Caissutti Angela
Caissutti Angela
中科院分区:
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文献类型:
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作者:
H. Alireza;E. Jennifer;Caissutti Angela

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在最近的研究中,提出了一个分析模型来分析之间的交互移动6-Methoxy-8 - [[6 methoxy-8 - [[6-Methoxy-2-Methyl-1 -三(2 -甲基丙基),4 dihydro-1h-isoquinolin-7-yl)氧]2-methyl-1 -三(2 -甲基丙基),4-Dihydro-1H-Isoquinolin-7-yl)氧]2-methyl-1 3(2 -甲基丙基)4-Dihydro-1H Isoquinolin-7-ol和双模场的双光子转换和政权依赖强度耦合的人类癌症细胞,组织和肿瘤的诊断。在确定纳米分子和场的初始条件后,通过时间演化算子得到系统状态向量的显式形式。为了研究纳米分子和场两个子系统之间的纠缠,评估了冯·诺伊曼熵的时间行为,作为人类癌细胞、组织和肿瘤诊断的纠缠程度的度量。
In the current study, an analytical model is presented to analyze interaction between a moving 6-Methoxy-8-[[6Methoxy-8-[[6-Methoxy-2-Methyl-1-(2-Methylpropyl)-3,4Dihydro-1H-Isoquinolin-7-yl]Oxy]-2-Methyl-1-(2-Methylpropyl)-3,4-Dihydro-1H-Isoquinolin-7-yl]Oxy]-2-Methyl-1(2-Methylpropyl)-3,4-Dihydro-1H Isoquinolin-7-ol and a two-mode field in the presence of two-photon transitions and in the coupling regime dependent on intensity for human cancer cells, tissues and tumors diagnosis. After identifying the initial condition of the nano molecule and the field, explicit form of state vector of the system is obtained by time evolution operator. In order to study the entanglement between two subsystems of nano molecule and field, the temporal behavior of Von Neumann entropy is evaluated as a measure of degree of entanglement for human cancer cells, tissues and tumors diagnosis.