Saïagh Kafila, Cottin Hervé, Aleian Aicha, Fray Nicolas
Laboratoire Interuniversitaire des Systèmes Atmosphériques, LISA, UMR CNRS 7583, Université Paris Est Créteil and Université Paris Diderot , Institut Pierre Simon Laplace, Créteil, France .
Astrobiology. 2015 Apr;15(4):268-82. doi: 10.1089/ast.2014.1196. Epub 2015 Apr 2.
We present a photostability study of two nucleobases, guanine and uracil. For the first time, the photoabsorption cross-section spectra of these molecules in the solid phase were measured in the VUV and mid-UV domain (115≤λ≤300 nm). They show a quite similar absorption level throughout this wavelength range, highlighting the importance of considering the whole VUV and UV domain during photolysis experiments in the laboratory. Their photolysis constant (J) can be estimated from those measurements as follows: 2.2×10(-2) s(-1)±11% for guanine and 5.3×10(-2) s(-1)±14% for uracil. This work shows that (i) measuring kinetic constants from a direct and "traditional" photolysis of a thin sample in the laboratory suffers strong limitations and (ii) achieving this measurement requires comprehensive modeling of the radiative transfer that occurs in any sample not optically thin (i.e.,≤2 nm). Moreover, this work has provided other data of interest: the refractive index of solid guanine and of uracil at 650 nm are 1.52 (±0.01) and 1.39 (±0.02), respectively, and the integrated IR band strengths (A) of solid guanine between 3700 and 2120 cm(-1) (3.4×10(-16) cm·molecule(-1)±13%) and of solid uracil between 3400 and 1890 cm(-1) (2.1×10(-16) cm·molecule(-1)±21%).
我们展示了对两种核碱基鸟嘌呤和尿嘧啶的光稳定性研究。首次在真空紫外和中紫外波段(115≤λ≤300 nm)测量了这些分子在固相中的光吸收截面光谱。它们在整个该波长范围内显示出相当相似的吸收水平,突出了在实验室光解实验中考虑整个真空紫外和紫外波段的重要性。根据这些测量,它们的光解常数(J)可估计如下:鸟嘌呤为2.2×10(-2) s(-1)±11%,尿嘧啶为5.3×10(-2) s(-1)±14%。这项工作表明:(i)在实验室中通过对薄样品进行直接且“传统”的光解来测量动力学常数存在很大局限性;(ii)要实现这种测量需要对任何非光学薄(即≤2 nm)样品中发生的辐射传输进行全面建模。此外,这项工作还提供了其他有价值的数据:固态鸟嘌呤和尿嘧啶在650 nm处的折射率分别为1.52(±0.01)和1.39(±0.02),固态鸟嘌呤在3700至2120 cm(-1)之间的积分红外波段强度(A)为3.4×10(-16) cm·分子(-1)±13%,固态尿嘧啶在3400至1890 cm(-1)之间的积分红外波段强度为2.1×10(-16) cm·分子(-1)±21%。