The Missed Tail of the Biological Carbon Pump revealed from BGC-Argo profiles
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摘要
The biological carbon pump regulates atmospheric CO₂ on centennial timescales, yet its in-situ quantification is biased by the reference depth chosen for export. The canonical export horizons are the euphotic depth (zeu; the depth of 1% surface PAR) and the mixed layer depth (MLD). However, zeu is systematically shallower than the depth of UV photodegradation, the detectable penetration depth of downwelling irradiance at 380 nm (Pd380). This leaves a intermediate layer between zeu and Pd380, in which particulate organic carbon (POC) accumulates and is remineralized by bacteria and zooplankton without being captured by Zeu-referenced export. Using quality-controlled BGC-Argo profiles from 444 floats across all major ocean basins (2012–2026), we (i) show that Pd380 is the physically relevant remineralization horizon, (ii) quantify the resulting global export-efficiency bias, and (iii) develop and validate a model that infers Pd380 from satellite-derived euphotic depth, making the horizon globally and repeatedly mappable.
To locate where particle degradation accelerates, we fit the Martin flux law with the normalization depth z* treated as a free parameter rather than fixed at 100 m. For each profile cluster we select the reference depth that maximizes the power-law fit quality and yields the most stable, physically bounded attenuation exponent b. This fitting plays a dual role. Empirically, the optimal z* marks the transition from the production-dominated surface to the remineralization-dominated mesopelagic. It also validates the Pd380 hypothesis, since the optimal Martin depth tracks Pd380 closely. UV-light attenuation thus marks where remineralization intensifies, and the zeu-Pd380 layer is the intermediate degradation zone.
From apparent oxygen utilization we then assessed globally the bias incurred by referencing Zeu instead of Pd380. Profiles fall into four cases according to the relative position of MLD, zeu and Pd380. Globally we find 14% overestimation of export efficiency on average, but the signal is strongly regionally structured. The South Subtropical gyre shows the largest bias (40%), driven by the extreme UV transparency of its oligotrophic waters, while Arctic and North Subpolar regions show the lowest (2%), due to deep winter mixing. 
Because Pd380 cannot be retrieved directly from standard ocean colour products, we developed a predictive model that links it to satellite-derived zeu through a joint regression whose slope and intercept vary smoothly with latitude and day of year. For an operational validation independent of the fitting data, we took in-situ Pd380 as ground truth, retrieved the co-located, contemporaneous, remotely-derived zeu
The framework delivers a physically grounded, optically retrievable reference depth for POC export and a route toward more consistent, biogeochemically anchored export-flux estimates from basin to global scale.
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报告人
Giovanni La Forgia
Research Engineer CNR-ISMAR

稿件作者
Giovanni La Forgia CNR-ISMAR
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重要日期
  • 会议日期

    01月12日

    2027

    01月15日

    2027

  • 07月21日 2026

    初稿截稿日期

  • 01月15日 2027

    注册截止日期

主办单位
State Key Laboratory of Marine Environmental Science, Xiamen University (MEL)
Department of Earth Sciences, National Natural Science Foundation of China (NSFC)
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