Titan as the Abode of Life
Abstract
:1. Introduction
2. The Global Environment
2.1. Sources of Chemical or Light Energy Suitable for Life
Reaction | Energy Released (kJ mole−1) |
---|---|
C2H2 + 3H2 = 2CH4 | 334 |
C2H6 + H2 = 2CH4 | 57 |
R–CH2 + H2 = R + CH4 | 54 |
2.2. Nutrients
Compound | Solubility, Mole Fraction | |
---|---|---|
Methane | Ethane | |
H2O | 10−22–10−18 | 10−18–10−15 |
CO2 | 10−5–10−3 | 10−5–10−3 |
HCN | 10−12–10−10 | 10−10–10−8 |
C2N2 | 10−8–10−7 | 10−7–10−6 |
CH3 CN: acetonitrile | 10−12–10−10 | 10−10–10−8 |
C2H3CN: acrylonitrile | 10−12–10−10 | 10−10–10−8 |
2.3. Liquid Habitats
2.4. Transport Cycles of Liquid Moving Nutrients and Wastes
3. Carbon Biochemistry on Titan
3.1. Compartmentalization for Autonomy and Reproduction
3.2. Information Storage Molecules and a Way to Duplicate Them
3.3. Structural Molecules and a Way to Build Them
4. Ecology
5. Search
Ecological Change and H2
6. Summary and Conclusions
- The small diversity of elements available in the environment.
- The low temperature of solution and the resulting negligible solubility.
- The non-polar nature of the methane and ethane solvent, further lowering solubility.
- The limited diversity of hydrocarbon structural molecules (compared to proteins).
Acknowledgments
Conflicts of Interest
References
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McKay, C.P. Titan as the Abode of Life. Life 2016, 6, 8. https://doi.org/10.3390/life6010008
McKay CP. Titan as the Abode of Life. Life. 2016; 6(1):8. https://doi.org/10.3390/life6010008
Chicago/Turabian StyleMcKay, Christopher P. 2016. "Titan as the Abode of Life" Life 6, no. 1: 8. https://doi.org/10.3390/life6010008
APA StyleMcKay, C. P. (2016). Titan as the Abode of Life. Life, 6(1), 8. https://doi.org/10.3390/life6010008