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含氧分子在有氧溶剂中被 1070nm 激光辐射激活。

Activation of oxygen molecules by 1070  nm laser radiation in aerated solvents.

出版信息

Opt Lett. 2021 Feb 1;46(3):556-559. doi: 10.1364/OL.416416.

Abstract

Population of the chemically active singlet (0) state of molecular oxygen occurring due to direct laser excitation of the (1)←-(0) transition has been observed for the first time, to the best of our knowledge, in oxygen molecules dissolved in organic solvents saturated with air under natural conditions (room temperature and normal atmospheric pressure). The data were obtained in 1 cm spectrophotometric cells due to the application of a set of high-power IR fiber and diode lasers. The rate of laser generation of the singlet ((0)) states in oxygen molecules was monitored by a chemical trapping method. It was found that the action spectra of singlet oxygen generation have one distinct band with a maximum at 1070 nm and half-width of ∼10. The absorption coefficients at 1070 nm were shown to be 100-110-fold lower than those at the main oxygen absorption peak (1273 nm) corresponding to the (0)←-(0) transition. Under excitation at 810-1061 nm, very low trapping rates were observed, which did not depend on excitation wavelengths being probably caused by thermal effects. There was no reliable increase in the trapping rate under irradiation at 810 and 920 nm corresponding to the (2,3)←-(0) transitions. This fact suggests that absorbance corresponding to these transitions is much lower than that at 1070 nm. The obtained results are important for both spectroscopy of oxygen and mechanistic studies of biological and therapeutic action of laser radiation.

摘要

据我们所知,在室温常压下,空气饱和的有机溶剂中溶解的氧分子,首次通过直接激光激发(1)←-(0)跃迁,观察到化学活性单重态(0)态的氧分子的存在。这些数据是在 1cm 分光光度计中获得的,这要归功于一组高功率的 IR 光纤和二极管激光器的应用。通过化学捕获法监测氧分子中单重态((0))态的激光生成速率。结果发现,单线态氧生成的作用光谱在 1070nm 处有一个明显的带,半宽约为 10nm。在 1070nm 处的吸收系数比对应于(0)←-(0)跃迁的主要氧吸收峰(1273nm)低 100-110 倍。在 810-1061nm 的激发下,观察到非常低的捕获速率,这可能是由于热效应,而与激发波长无关。在对应于(2,3)←-(0)跃迁的 810 和 920nm 照射下,捕获速率没有可靠增加。这一事实表明,这些跃迁的吸收度远低于 1070nm 处的吸收度。这些结果对于氧的光谱学以及激光辐射的生物学和治疗作用的机制研究都非常重要。

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