球粒陨石
小行星
天体生物学
陨石
宇宙化学
太阳系
化学元素丰度
物理
稀土
碳质球粒陨石
行星际空间飞行
成分数据
丰度(生态学)
稀土元素
太阳系的形成和演化
风化土
土(古典元素)
行星科学
地球科学
母体
电感耦合等离子体质谱法
挥发物
普通球粒陨石
地球化学
地质学
太阳风
行星际尘埃云
数据库
矿物学
增值(金融)
天体物理学
定轨
作者
J M Trigo-Rodriguez,P Grébol-Tomás,J. Ibáñez-Insa,J. Alonso Azcárate,M. Gritsevich
标识
DOI:10.1093/mnras/staf1902
摘要
Abstract Undifferentiated asteroids, particularly the parent bodies of carbon-rich chondrite groups, might be promising candidates for future space resource utilization due to their primitive composition and potential to host valuable metals and rare earth elements. However, our understanding of their bulk elemental composition remains limited, as most data are derived from reflectance spectra with low mineralogical resolution. Sample return missions have started to change that, as returned materials are already available to study. Still the available meteorites provide a valuable source of information about the diversity of undifferentiated asteroids in the interplanetary space. To improve compositional insights, we conducted Inductively Coupled Plasma Mass Spectrometry (ICP-MS) and ICP-AES (Inductively coupled Plasma Atomic Emission Spectroscopy) analyses on a representative suite of carbonaceous chondrites. These meteorites, considered analogs of undifferentiated asteroids, preserve materials from the early solar system and provide a geochemical record of their parent bodies. Our results highlight the abundance and distribution of transition metals, siderophile elements, and rare earth elements across several chondrite groups. These findings support the view that C-type asteroids may serve as viable sources of critical materials, while also informing future mission planning, extraction strategies, and the development of new technologies for low-gravity resource operations.
科研通智能强力驱动
Strongly Powered by AbleSci AI