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1. 湖南理工学院, 物理与电子信息系,湖南 岳阳,414006
2. 华中科技大学, 武汉光电国家实验室,湖北 武汉,430074
收稿日期:2006-10-12,
修回日期:2006-12-28,
纸质出版日期:2007-05-20
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刘靖, 孙军强, 黄重庆, 黄德修. 二维光量子阱共振隧穿光谱特性的改善[J]. 发光学报, 2007,28(3): 325-330
LIU Jing, SUN Jun-qiang, HUANG Chong-qing, HUANG De-xiu. Improvement of Resonant Tunneling Spectral Character of Two-dimensional Quantum Wells[J]. Chinese Journal of Luminescence, 2007,28(3): 325-330
用时域有限差分法研究了光子晶体量子阱中的量子化能态.研究发现
开腔与闭腔光量子阱结构共振透射峰的数目相同
位置几乎不变
但闭腔光量子阱出射光强更强
透射率更大
频率选择性更好
品质因子
Q
值更高.同时计算了开腔和闭腔光量子阱光场分布
结果表明
开腔光量子阱为行波阱
闭腔光量子阱为驻波阱
充分证实了闭腔光量子阱更能束缚光场的设想
对其作用机理进行了探讨.
Photonic crystal is regarded as the counterpart of the electronic crystal in the field of optics
many concepts of the solid state physics are introduced into the photonic crystal
such as reciprocal lattice vector
Brillouin zone and energy band structure
etc
. People can understand the operating principle of photonic crystal through researching electronic crystal. Back in the seventies of the 20th century
with the gradual minia-turization of semiconductor devices
the concepts of quantum well and superlattice were introduced in semiconductor materials. People are excited to make photon quantum well and superlattice through imitating the semiconductor quantum well because of the numerous similarities between the photonic crystal and the semicon-ductor
much progress has been made both in experiment and in theory
quantum well structures are realized in one-dimension
two-dimension and three-dimension photonic crystal
the phenomenon of optical quantum well similar to semiconductor quantum well is observed
the quantized photon levels emerge from the transmission spectrum. The observable information of optical spectrum includes frequency and intensity. Traditionally
restricted by the complexity of the spectral intensity and the precision of data processing
the majority research of the spectrum is concentrated on frequency. With the improvement of the experiment condition and the continuous optimization of algorithm as well as the advancement of the calculation conditions
the research on spectrum intensity is becoming more and more important. In order to gain the accurate spectral intensity absolute value
people are always searching for a simple detection method which can reflect the spectrum structure truthfully. Essentially
the calculation of the spectrum intensity is a problem of quantum mechanics. Although the quantum mechanics describes the existence of the microscopic material by the expression of probability
according to the Einstein light quantum supposition
we can also research the light wave by decompounding it into single photon. The light wave is the macroscopic ensemble average of the photon particles
while photon is the micro-quantization of the light wave. In the photon quantum well structure
the spectrum intensity is proportion to the number of the photons which tunnel through the photonic wells. The larger the number is
the stronger the tunneling spectrum intensity is; the more concentrated the light beam is
the higher the efficiency is. It is more suitable to produce the laser source
photoelectric detector
optical switch and many other optical communication devices. The relative studies are more tempting and have great application prospect. The quantized energy states of photonic crystal quantum-well are discussed by finite-difference time-domain method(FDTD). The results show that for the closed photonic quantum-well the number of resonant transmission peaks is equal to that of open quantum-well's
the positions are almost unchanging
but for the closed photonic quantum-well
its extractive light intensity is obviously stronger
the transmissivity is higher
the frequency selectivity is better and the quality factor
Q
is higher. Simultaneously the optical field distributions in both quantum-well structures are obtained
it is shown that the open quantum-wells are traveling-wave wells while the close quantum-wells are standing-wave wells
which has firmly confirmed the proposal that closed photonic quantum-wells could bound optical field better
the physical mechanics which results in these conclusions are discussed. The research in this area is rarely seen.
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Guo Ping,Qin Dongmei,Hu Zhanyi,et al.A novel method for spectral signal pattern recognition.spectroscopy and spectral analysis[J].Spectroscopy and Spectral Analysis (光谱学与光谱分析),2003,23(4):811-815 (in Chinese).
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