Potential for photosynthesis on Mars within snow and ice

IF 8.1 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES
Aditya R. Khuller, Stephen G. Warren, Philip R. Christensen, Gary D. Clow
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Abstract

On Earth, solar radiation can transmit down to multiple metres within ice, depending on its optical properties. Organisms within ice can harness energy from photosynthetically active radiation while being protected from damaging ultraviolet radiation. On Mars, the lack of an effective ozone shield allows ~30% more damaging ultraviolet radiation to reach the surface in comparison with Earth. However, our radiative transfer modelling shows that despite the intense surface ultraviolet radiation, there are radiatively habitable zones within exposed mid-latitude ice on Mars, at depths ranging from a few centimetres for ice with 0.01–0.1% dust, and up to a few metres within cleaner ice. Numerical models predict that dense dusty snow in the martian mid-latitudes can melt below the surface at present. Thus, if small amounts of liquid water are available at these depths, mid-latitude ice exposures could represent the most easily accessible locations to search for extant life on Mars. Radiative transfer modelling suggests zones of radiative habitability could exist beneath the surface of exposed ice in the Martian mid-latitudes, protected from harmful radiation but within reach of photosynthetically active radiation
火星冰雪中的光合作用潜力
在地球上,太阳辐射可以根据冰的光学特性,向下传输到数米深的冰层中。冰内的生物可以利用光合活性辐射的能量,同时免受破坏性紫外线辐射的伤害。在火星上,由于缺乏有效的臭氧防护,到达火星表面的破坏性紫外线辐射比地球多出约 30%。然而,我们的辐射传递模型显示,尽管火星表面紫外线辐射很强,但在火星裸露的中纬度冰层中存在辐射宜居区,其深度从含 0.01-0.1% 尘埃的冰层的几厘米到较清洁冰层的几米不等。数字模型预测,目前火星中纬度地区的高密度尘雪可以在地表以下融化。因此,如果在这些深度有少量液态水,中纬度冰层暴露区可能是最容易接近的地点,可以用来搜寻火星上现存的生命。辐射传递模型表明,在火星中纬度地区裸露的冰层表面下可能存在辐射宜居区,这些区域可免受有害辐射的影响,但在光合有效辐射范围之内。
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来源期刊
Communications Earth & Environment
Communications Earth & Environment Earth and Planetary Sciences-General Earth and Planetary Sciences
CiteScore
8.60
自引率
2.50%
发文量
269
审稿时长
26 weeks
期刊介绍: Communications Earth & Environment is an open access journal from Nature Portfolio publishing high-quality research, reviews and commentary in all areas of the Earth, environmental and planetary sciences. Research papers published by the journal represent significant advances that bring new insight to a specialized area in Earth science, planetary science or environmental science. Communications Earth & Environment has a 2-year impact factor of 7.9 (2022 Journal Citation Reports®). Articles published in the journal in 2022 were downloaded 1,412,858 times. Median time from submission to the first editorial decision is 8 days.
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