The Emergence of an Urable Earth: How Early Planetary Evolution Shaped the Chemical Window for Life’s Origin

Earth’s early history provides the only natural record for evaluating how planetary evolution can generate environments capable of initiating life. Here we review early Earth evolution through the lens of urability: the time-dependent capacity of planetary environments to support prebiotic chemistry progressing toward compartmentalized, self-propagating, information-bearing systems. We argue that urability is not a single globally habitable state, but a transient overlap among several coupled dimensions: liquid water availability, permissive temperature, ocean pH and salinity, access to bioessential elements, atmospheric shielding and volatile retention, and exposed or shallow environments that enable concentration, mineral catalysis, and wet–dry cycling. During the Hadean–early Archean transition, these dimensions were shaped by magma-ocean degassing, late accretion history, atmospheric compositional evolution from CO2-rich to more N2-dominated states, ferruginous ocean chemistry, tectonic recycling, continental growth, and intermittent land emergence. These processes created tradeoffs: high pCO2 may have enhanced abiotic nitrogen fixation but imposed hot and acidic conditions, whereas CO2 drawdown improved climate and ocean pH while weakening some fixed-nitrogen sources; ferruginous chemistry could locally enhance phosphate availability while also promoting nutrient scavenging; and tectonic recycling could stabilize the carbon cycle while generating chemically diverse but spatially intermittent land environments. We therefore frame life’s origin as a planetary timing problem, in which prebiotic opportunities opened and closed as multiple environmental constraints came into and out of overlap. This perspective motivates coupled models that resolve when and where water, temperature, pH, nutrients, energy, atmospheric photochemistry, and exposed land surfaces jointly produced urable environments on Earth and other rocky planets.

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Publication Details

Journal
Life
Published
2026-08-28
DOI
https://doi.org/10.3390/life16091436
Primary Topic
Origins and Evolution of Life
Type
article
Field-Weighted Citation Impact
0.00

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article

The Emergence of an Urable Earth: How Early Planetary Evolution Shaped the Chemical Window for Life’s Origin

Meng Guo, Simon A. T. Redfern, Siyu Liu, Zekun Meng
Life
Origins and Evolution of Life
article

The Emergence of an Urable Earth: How Early Planetary Evolution Shaped the Chemical Window for Life’s Origin

Meng Guo, Simon A. T. Redfern, Siyu Liu, Zekun Meng
article en

Abstract

Earth’s early history provides the only natural record for evaluating how planetary evolution can generate environments capable of initiating life. Here we review early Earth evolution through the lens of urability: the time-dependent capacity of planetary environments to support prebiotic chemistry progressing toward compartmentalized, self-propagating, information-bearing systems. We argue that urability is not a single globally habitable state, but a transient overlap among several coupled dimensions: liquid water availability, permissive temperature, ocean pH and salinity, access to bioessential elements, atmospheric shielding and volatile retention, and exposed or shallow environments that enable concentration, mineral catalysis, and wet–dry cycling. During the Hadean–early Archean transition, these dimensions were shaped by magma-ocean degassing, late accretion history, atmospheric compositional evolution from CO2-rich to more N2-dominated states, ferruginous ocean chemistry, tectonic recycling, continental growth, and intermittent land emergence. These processes created tradeoffs: high pCO2 may have enhanced abiotic nitrogen fixation but imposed hot and acidic conditions, whereas CO2 drawdown improved climate and ocean pH while weakening some fixed-nitrogen sources; ferruginous chemistry could locally enhance phosphate availability while also promoting nutrient scavenging; and tectonic recycling could stabilize the carbon cycle while generating chemically diverse but spatially intermittent land environments. We therefore frame life’s origin as a planetary timing problem, in which prebiotic opportunities opened and closed as multiple environmental constraints came into and out of overlap. This perspective motivates coupled models that resolve when and where water, temperature, pH, nutrients, energy, atmospheric photochemistry, and exposed land surfaces jointly produced urable environments on Earth and other rocky planets.

LifeVol. 16(9)
Planetary Science Institute (US), Nanyang Technological University (SG), Hong Kong University of Science and Technology (HK), Earth Observatory of Singapore (SG), University of Hong Kong (HK)
University of Hong Kong
Life below water
Openalex Percentile: Top 10%
Origins and Evolution of Life
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