Boyacioglu B, Chatterjee A
J Appl Phys. 2012 Oct 15;112(8):83514. doi: 10.1063/1.4759350. Epub 2012 Oct 22.
The heat capacity and entropy effects in a GaAs quantum dot with Gaussian confinement are calculated in the presence of a magnetic field and its interaction with the electron spin using the canonical ensemble approach. It is shown that the heat capacity shows a Schottky-like anomaly at a low temperature, while it approaches a saturation value 2k(B) as the temperature increases. As a function of the magnetic field, the heat capacity shows a maximum and then reduces to zero. Also the width of the maximum becomes wider with temperature. It is also shown that the heat capacity remains constant up to a certain value of the confinement length beyond which it displays a monotonic increase. However as a function of the confinement strength, though the heat capacity initially shows a significant drop, it remains constant thereafter. At low temperatures like T = 10 and 20 K, the entropy is found to decrease with increasing magnetic field, but at higher temperatures, it remains almost independent of the magnetic field. At high temperatures, entropy shows a monotonic increase with temperature, but at a sufficiently low temperature as the magnetic field decreases, the entropy is found to develop a shoulder which becomes more and more pronounced with decreasing magnetic field.
采用正则系综方法,计算了具有高斯限制的GaAs量子点在磁场存在下的热容量和熵效应,以及磁场与电子自旋的相互作用。结果表明,热容量在低温下呈现出类似肖特基的异常,而随着温度升高,它趋近于饱和值2k(B)。作为磁场的函数,热容量先出现最大值,然后降至零。并且最大值的宽度随温度变宽。还表明,热容量在限制长度达到一定值之前保持恒定,超过该值后它呈现单调增加。然而,作为限制强度的函数,尽管热容量最初显著下降,但此后保持恒定。在低温如T = 10和20 K时,发现熵随磁场增加而减小,但在较高温度下,它几乎与磁场无关。在高温下,熵随温度单调增加,但在足够低的温度下,随着磁场减小,熵会出现一个肩部,且随着磁场减小越来越明显。