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Rift-induced disruption of cratonic keels drives kimberlite volcanism

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NATURE
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NATURE PORTFOLIO
DOI: 10.1038/s41586-023-06193-3

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Kimberlites are explosive magmas that contain volatile materials and sometimes diamonds, erupted on Earth's surface in the past. They originate from depths exceeding 150 km in Earth's mantle, occur in stable cratons, and are broadly synchronous with supercontinent cyclicity. It remains unclear whether their mobilization is driven by mantle plumes or by mechanical weakening of cratonic lithosphere. This study suggests that most kimberlites erupted about 30 million years after continental breakup, indicating an association with rifting processes.
Kimberlites are volatile-rich, occasionally diamond-bearing magmas that have erupted explosively at Earth's surface in the geologic past(1-3). These enigmatic magmas, originating from depths exceeding 150 km in Earth's mantle(1), occur in stable cratons and in pulses broadly synchronous with supercontinent cyclicity(4). Whether their mobilization is driven by mantle plumes(5) or by mechanical weakening of cratonic lithosphere(4,6) remains unclear. Here we show that most kimberlites spanning the past billion years erupted about 30 million years (Myr) after continental breakup, suggesting an association with rifting processes. Our dynamical and analytical models show that physically steep lithosphere-asthenosphere boundaries (LABs) formed during rifting generate convective instabilities in the asthenosphere that slowly migrate many hundreds to thousands of kilometres inboard of rift zones. These instabilities endure many tens of millions of years after continental breakup and destabilize the basal tens of kilometres of the cratonic lithosphere, or keel. Displaced keel is replaced by a hot, upwelling mixture of asthenosphere and recycled volatile-rich keel in the return flow, causing decompressional partial melting. Our calculations show that this process can generate small-volume, low-degree, volatile-rich melts, closely matching the characteristics expected of kimberlites(1-3). Together, these results provide a quantitative and mechanistic link between kimberlite episodicity and supercontinent cycles through progressive disruption of cratonic keels.

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