The contribution of rock strength to soil production.

Geyman, Emily C; Paige, David A; Lamb, Michael P · Nature · 2025

basic_science · Level V

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Abstract

It has long been proposed<sup>1</sup>, and then observed<sup>2,3</sup>, that faster rates of soil production occur beneath thinner soils. It remains uncertain, however, whether soil thickness is the driving variable regulating production from the top-down<sup>2-6</sup>, or whether soil thickness is simply responding to changes in bedrock weathering controlled from the bottom-up<sup>7,8</sup>. Answering this question is difficult because the feedbacks between soil production and soil erosion, the processes that jointly govern soil thickness<sup>2,9,10</sup>, respond to perturbations on timescales of thousands to millions of years<sup>11,12</sup>, timescales that are too long for scientists to observe directly. Here we leverage a space-for-time substitution at a transient mountain range along the San Andreas Fault<sup>13-15</sup>, where the remarkable tectonic setting allows for independent quantification of uplift, soil production and erosion. We show that, following a pulse of tectonic uplift, the conversion of rock to soil accelerates before the overlying soils thin, but at the same time that topographic stresses increase<sup>7</sup> and the rock weakens<sup>16</sup>. This observation challenges the long-standing assumption that soil production rates are controlled predominantly by soil thickness<sup>1,2</sup>, and instead lends evidence for a bottom-up, rock strength control on soil production.