论文标题
生物启发的天然阳光泵激光
Bio-inspired natural sunlight-pumped lasers
论文作者
论文摘要
即使阳光是迄今为止人类可用的最丰富的可再生能源,但其稀释和可变的性质仍保留了有效的方法来收集,存储和分发这种能量诱人的触手可及。将太阳提供的不一致的能量供应变成连贯的激光束将克服使用阳光作为清洁能源固有的几种实际局限性:激光束几乎在大距离上无损地传播,并且它们有效地驱动化学反应将阳光转化为化学能的化学反应。在这里,我们为一种新型的激光提出了一种生物启发的蓝图,其目的是将不合理的自然阳光升级到连贯的激光束中。我们提出的设计构成了通向阳光泵激光的新颖和不同的道路。为了用自然阳光提供的极稀释功率实现激光,我们在这里提出了一种激光培养基,该激光培养基由受自然光合复合物结构的分子聚集体组成。这种复合物在从天然阳光等稀释的电源中收集光子时表现出非常大的内部效率。具体而言,我们考虑了一种杂种结构,其中紫色细菌(Rhodobacter sphaeroides)中的光合络合物围绕着一个由两个强耦合发色团组成的适当设计的分子二聚体。我们表明,如果由周围的光合复合物泵送,这些复合物有效地收集和浓缩了太阳能,则核心二聚体结构可以达到种群反转,并在自然阳光下达到激光阈值。这里提出的设计原则还将为开发其他生物启发的量子设备铺平道路。
Even though sunlight is by far the most abundant renewable energy source available to humanity, its dilute and variable nature has kept efficient ways to collect, store, and distribute this energy tantalisingly out of reach. Turning the incoherent energy supply provided by the Sun into a coherent laser beam would overcome several of the practical limitations inherent in using sunlight as a source of clean energy: laser beams travel nearly losslessly over large distances, and they are effective at driving chemical reactions which convert sunlight into chemical energy. Here we propose a bio-inspired blueprint for a novel type of laser with the aim of upgrading unconcentrated natural sunlight into a coherent laser beam. Our proposed design constitutes a novel and different path towards sunlight-pumped lasers. In order to achieve lasing with the extremely dilute power provided by natural sunlight, we here propose a laser medium comprised of molecular aggregates inspired by the architecture of natural photosynthetic complexes. Such complexes exhibit a very large internal efficiency in harvesting photons from a power source as dilute as natural sunlight. Specifically, we consider a hybrid structure, where photosynthetic complexes in purple bacteria (Rhodobacter sphaeroides) surround a suitably engineered molecular dimer composed of two strongly coupled chromophores. We show that if pumped by the surrounding photosynthetic complex, which efficiently collects and concentrates solar energy, the core dimer structure can reach population inversion, and reach the lasing threshold under natural sunlight. The design principles proposed here will also pave the way for developing other bio-inspired quantum devices.