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101.
利用掠入射X射线衍射和常规X射线衍射研究了Si(001)上的Ge量子点在不同厚度的Si覆盖层下微结构的变化,同时用AFM研究了其形貌变化.实验结果表明在小的覆盖度下,量子点中组分的变化已十分明显,同时量子点的形状也发生了明显的变化.  相似文献   
102.
本从与真空接触的存在二支声子的半无限极性晶体表面附近极化子的哈密顿算符入手,应用二支模型理论,分别对GaAs和ZnO两种材料计算了外表面电子的量子像势及其极化子的基态能量,计算结果表明,利用二支模型理论求出的外表面极化子的基态能量与利用一支模型理论求出的外表在面极化子的基态能量相差较大,对GaAs,误差约为31.1%, 对ZnO,误差约为14.8%。  相似文献   
103.
Based on the Dyson-Schwinger equations (DSEs) in the ‘rainbow‘ approximation, we investigate the quark virtuality in the vacuum state and quantum-chromodynamics (QCD) vacuum condensates. In particular, we calculate the local quark vacuum condensate and quark-gluon mixed condensates, and then the virtuality of quark. The calculated quark virtualities are λu,d^2 0.7 GeV^2 for u, d quarks, and λs^2=1.6 GeV^2 for s quark. Our theoretical predictions are consistent with empirical values used in QCD sum rules, and also fit to lattice QCD predictions.  相似文献   
104.
An effcient multiparty quantum secret sharing scheme is proposed with Greenberger-Horne-Zeilinger (GHZ) states following some ideas in quantum dense coding. The agents take the single-photon measurements on the photons received for eavesdropping check and exploit the four local unitary operations Ⅰ, σx, σx and iσy to code their message. This scheme has the advantage of high capacity as each GHZ state can carry two bits of information. The parties do not need to announce the measuring bases for almost all the photons, which will reduce the classical information exchanged largely. The intrinsic efficiency for qubits and the total effciency both approach the maximal values.  相似文献   
105.
Quantum Key Distribution Using Four-Qubit W State   总被引:3,自引:0,他引:3  
A new theoretical quantum key distribution scheme based on entanglement swapping is proposed, where four-qubit symmetric W state functions as quantum channel. It is shown that two legitimate users can secretly share a series of key bits by using Bell-state measurements and classical communication.  相似文献   
106.
李翔  沈有根 《中国物理快报》2006,23(5):1103-1105
Quantum gravity can modify the usual energy-momentum dispersion relation. We provide evidence for the argument that the modified dispersion relation is constrained by the black hole thermodynamics, for consistency of quantum gravity.  相似文献   
107.
The mutual interaction of three different defects in photonic crystals is studied theoretically. A theoretical model based on the classical wave analogue of the tight-binding (TB) picture is applied to the structure. We obtain analytic expressions for the eigenfrequencies and eigenmodes, from which the transmissions at resonance are derived. Based on this, a new type of the photonic quantum-well structure is investigated and its possible application is discussed. The TB predictions are compared with the transfer matrix method simulation results.  相似文献   
108.
量子态是量子信息的载体,因此,从某种意义上说,量子信息过程就是量子态的传递和操作的过程。量子态的远程制备包括量子隐形传态(Telepotation)和远程态制备(Remote State Preparation(RSP))。远程态制备是一种利用纠缠和经典通讯传输量子态的简单方法,相比较量子态telepotation耗费的资源更少(1 ebit and 1 cbit)。Cluster State是一种特殊的量子态,在量子计算方案中有着广泛的应用。我们实验上利用SPDC产生的偏振纠缠双光子,加入时间比特,构造出Cluster State,并利用Cluster State实现了量子态的远程制备。  相似文献   
109.
Recently, research on left-handed materials (LHMs) has attracted considerable attentions. The LHMs are a kind of man-made metameterials which have negative permittivity and negative permeability. These metameterials have many novel properties such as inverse light pressure, and reverse Doppler effect, which lead to many potential applications of LHMs such as superlenses which, in principle, can achieve arbitrary subwavelength resolution. However, though the properties mentioned above are seen to be classical, the quantum phenomena in LHMs have also attracted attentions such as the modified spontaneous emission of atoms in LHME.  相似文献   
110.
The second law of thermodynamics is one of the most fundamental and for-reaching laws of physics. It teaches us that when a closed system undergoes a thermodynamic process the entropy of the system never decreases; it increases, or at least remains constant. If the entropy increases the thermodynamic process is irreversible, otherwise it is reversible. Only ideal thermal process is reversible. In classical world a great number of facts have proved the second law is true. But in quantum world since the quantum coherence and correlations exist we are not sure the second law is still true, at least in principle. This is because that: 1. on the microscopic level the irreversibility is conflict with the reversibility of all fundamental physical laws ; 2. there are not enough evidences to show it is true in quantum world.  相似文献   
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