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Ultrabright electrically driven single-photon source on diamond operating above room temperature

机译:在室温以上运行的金刚石上的超亮电驱动单光子源

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Operation at the single-photon level is beneficial for energy efficiency in optical and optoelectronic devices and opens new prospects for novel applications, ranging from quantum cryptography to quantum computations. In this regard, efficient single-photon sources operating upon electrical injection at room temperature are crucially important. Color centers in diamond are currently considered to be the best candidates capable of room temperature operation. These defects in the lattice structure have been studied intensively during the last two decades, and optically driven single-photon sources have been demonstrated. However, the possibility of operation upon electrical injection was not clear until recently mainly because diamond is a unique material at the interface between solid-state and semiconductor physics. The demonstrated photon emission rate under electrical pumping did not exceed a few tens of kcounts per second [1], which is several orders of magnitude lower than the emission rate of optically pumped centers [2] and is well below the level required for practical applications. Since the mechanism of electroluminescence of the color center in diamond was not known, it was not clear to what extent the single-photon emission rate upon electrical injection could be increased.
机译:单光子级操作有利于提高光学和光电设备的能效,并为从量子密码学到量子计算的新型应用打开了新的前景。在这方面,在室温下通过电注入操作的有效单光子源至关重要。目前认为钻石中的色心是能够在室温下运行的最佳候选者。在过去的二十年中,已经对晶格结构中的这些缺陷进行了深入研究,并已证明了光驱动单光子源。但是,直到最近,电注入操作的可能性尚不清楚,这主要是因为金刚石是固态和半导体物理之间界面上的独特材料。电泵下的光子发射率证明不超过每秒几十kcounts [1],比光泵浦中心的发射率[2]低几个数量级,并且远低于实际应用所需的水平。由于金刚石中色心的电致发光机理尚不清楚,因此尚不清楚电注入时单光子发射速率可提高到何种程度。

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