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April 5, 2026Geophysical Research Letters0 citationsOpen Access

Characterizing the Unique Chemical Imprint of On‐Axis, Lower‐Temperature Hydrothermal Flow to the Deep Ocean (Southern East Pacific Rise, 16.5°–18.0°S)

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LMLaura E. MooreRBRandelle M. BundyJRJoseph A. Resing

Key Points

  • To characterize the chemical signatures of lower-temperature hydrothermal flow in the ocean.
  • Used autonomous underwater vehicle Sentry for surveys
  • Performed conductivity-temperature-depth rosette casts
  • Sampled water column within 40 m of seafloor
  • Analyzed chemical ratios of particulate iron to sulfur and methane to manganese
  • Samples from lower-temperature flow showed low particulate iron:sulfur ratios
  • High methane:total-dissolvable manganese ratios were found in LTF-affected samples
  • Distinct chemical signatures were confirmed for lower-temperature flow compared to high-temperature venting

Abstract

Abstract In addition to high‐temperature vents, lower‐temperature flow (LTF) (<300°C) is abundant along mid‐ocean ridges and contributes globally‐important fluxes of heat and water along with largely‐unconstrained geochemical influences on the ocean. We examined the impact of on‐axis LTF on the chemical composition of the overlying water column (<40 m above seafloor) along the 16.5°–18.0°S sector of the ultrafast‐spreading southern East Pacific Rise using autonomous underwater vehicle Sentry surveys and conductivity‐temperature‐depth rosette casts. LTF sites were typically spatially isolated from high‐temperature systems and imparted unique chemical signatures to the overlying ocean. Water column samples impacted by LTF exhibited low particulate iron:sulfur ratios and high methane: total‐dissolvable manganese ratios, whereas samples influenced by high‐temperature venting exhibited opposite trends. We confirmed that LTF imparts a distinct and measurable chemical signature to the water column, independent from high‐temperature vents. Isolated, on‐axis LTF will be important to consider when assessing hydrothermal circulation impacts upon ocean biogeochemistry.

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Cite This Study

Moore et al. (2026) studied this question.

synapsesocial.com/papers/69d1fd13a79560c99a0a2d94https://doi.org/10.1029/2025gl120412
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