论文标题
将五苯苯乙烯放在一边:氮氨酸掺杂的para-苯基作为零场室温maser,具有强耦合,用于空腔量子电动力学
Move aside pentacene: Diazapentacene doped para-terphenyl as a zero-field room-temperature maser with strong coupling for cavity quantum electrodynamics
论文作者
论文摘要
Masers是激光的微波类似物,有望提供微波信号的超低噪声放大,以用于医疗MRI成像和深空通信。由于发现了在室温下运行的收益媒体,因此对现代Masers的研究重新燃起了,从而避免了庞大的低温作用,从而阻碍了他们的使用。然而,除了在钻石中二苯乙烯的两种已知的五苯掺杂型戊季型和负氮的氮胶状缺陷之外,寻找全新的房间温度增益媒体的进展稀缺。在这里,我们将发现6,13-二氮嗪在para-苯基中掺杂的6,13-二氮嗪作为maser增益培养基,该培养基可以在室温下运行,而无需外部磁场。测得的-10 dBM的MASER脉冲功率表明它与五苯烯掺杂的para-Terphenyl的绝对功率相当,同时具有与其五苯苯乙烯的前身相对于其五苯苯乙烯的优势,因为它具有更快的放大启动时间,可以在620 Nm的较长的波长中激发更长的波长,并在620 NM中获得更大的化学稳定性,并享受添加的NITROGON的化学稳定性。 Furthermore, we show that the maser bursts allow 6,13-diazapentacene-doped para-terphenyl to reach the strong coupling regime for cavity quantum electrodynamics, where it has a high cooperativity of 182. We study the optical and microwave spin dynamics of 6,13-diazapentacene-doped para-terphenyl in order to evaluate its behavior as a maser gain medium, where it具有快速的间间穿越和有利的三重量子量子产率。我们的结果为未来发现其他类似的Maser材料的发现铺平了道路,并有助于指出诸如室温下腔量子量子电动动力效应的有希望的候选者。
Masers, the microwave analogue of lasers, promise to deliver ultra-low noise amplification of microwave signals for use in medical MRI imaging and deep-space communication. Research on masers in modern times was rekindled thanks to the discovery of gain media that were operable at room-temperature, eschewing bulky cryogenics that hindered their use. However, besides the two known materials of pentacene doped in para-terphenyl and negatively-charged nitrogen-vacancy defects in diamond, there has been scarce progress in the search for completely new room-temperature gain media. Here we show the discovery of 6,13-diazapentacene doped in para-terphenyl as a maser gain medium that can operate at room-temperature and without an external magnetic field. A measured maser pulse power of -10 dBm shows it is on par with pentacene-doped para-terphenyl in absolute power, while possessing compelling advantages against its pentacene predecessor in that it has a faster amplification startup time, can be excited with longer wavelength light at 620 nm and enjoys greater chemical stability from added nitrogen groups. Furthermore, we show that the maser bursts allow 6,13-diazapentacene-doped para-terphenyl to reach the strong coupling regime for cavity quantum electrodynamics, where it has a high cooperativity of 182. We study the optical and microwave spin dynamics of 6,13-diazapentacene-doped para-terphenyl in order to evaluate its behavior as a maser gain medium, where it features fast intersystem crossing and an advantageously higher triplet quantum yield. Our results pave the way for the future discovery of other similar maser materials and help point to such materials as promising candidates for the study of cavity quantum electrodynamic effects at room-temperature.