Li Xiaohui, Ishizuka Osamu, Stern Robert J, Li Sanzhong, Lai Zhiqing, Somerville Ian, Suo Yanhui, Chen Long, Yu Hongxia
Frontiers Science Center for Deep Ocean Multispheres and Earth System, Key Lab of Submarine Geosciences and Prospecting Techniques, MOE and College of Marine Geosciences, Ocean University of China, Qingdao, 266100, China.
Laboratory for Marine Mineral Resources, Qingdao Marine Science and Technology Center, Qingdao, 266237, China.
Nat Commun. 2024 May 14;15(1):4088. doi: 10.1038/s41467-024-48308-y.
Compositions of island arc and back-arc basin basalts are often used to trace the recycling of subducted materials. However, the contribution of subducted components to the mantle source during initial arc rifting before back-arc basin spreading is not yet well constrained. The northernmost Mariana arc is ideal for studying this because the transition from rifting to back-arc spreading is happening here. Here we report major and trace element and Pb isotopic compositions of olivine-hosted melt inclusions from lavas erupted during initial rifting at 24°N (NSP-24) and compare them with those in active arc front at 21°N and mature back-arc basin at 18°N. NSP-24 high-K melt inclusions have highly radiogenic Pb compositions and are close to those of the HIMU end-member, suggesting the presence of this component in the magma source. The HIMU-like component may be stored in the over-riding plate and released into arc magma with rifting. HIMU-type seamounts may be subducted elsewhere beneath the Mariana arc, but obvious HIMU-type components appear only in the initial stages of arc rifting due to the low melting degree and being consumed during the process of back-arc spreading.
岛弧和弧后盆地玄武岩的成分常被用于追踪俯冲物质的再循环。然而,在弧后盆地扩张之前的初始弧裂谷作用期间,俯冲组分对幔源的贡献尚未得到很好的限制。最北端的马里亚纳弧是研究这一问题的理想场所,因为这里正在发生从裂谷作用到弧后扩张的转变。在此,我们报告了在北纬24°(NSP - 24)初始裂谷作用期间喷发的熔岩中橄榄石寄主熔体包裹体的主量和微量元素以及铅同位素组成,并将它们与北纬21°的活动弧前沿和北纬18°的成熟弧后盆地中的熔体包裹体进行了比较。NSP - 24高钾熔体包裹体具有高度放射性成因的铅组成,且接近HIMU端元的组成,表明岩浆源中存在该组分。类HIMU组分可能储存在上覆板块中,并随着裂谷作用释放到弧岩浆中。HIMU型海山可能在马里亚纳弧下方的其他地方俯冲,但由于低熔融程度以及在弧后扩张过程中被消耗,明显的HIMU型组分仅出现在弧裂谷作用的初始阶段。