Schmidt Mariek E, Kizovski Tanya V, Liu Yang, Hernandez-Montenegro Juan D, Tice Michael M, Treiman Allan H, Hurowitz Joel A, Klevang David A, Knight Abigail L, Labrie Joshua, Tosca Nicholas J, VanBommel Scott J, Benaroya Sophie, Crumpler Larry S, Horgan Briony H N, Morris Richard V, Simon Justin I, Udry Arya, Yanchilina Anastasia, Allwood Abigail C, Cable Morgan L, Christian John R, Clark Benton C, Flannery David T, Heirwegh Christopher M, Henley Thomas L J, Henneke Jesper, Jones Michael W M, Orenstein Brendan J, Herd Christopher D K, Randazzo Nicholas, Shuster David, Wadhwa Meenakshi
Department of Earth Sciences, Brock University, St. Catharines, ON L2S 3A1, Canada.
Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USA.
Sci Adv. 2025 Jan 24;11(4):eadr2613. doi: 10.1126/sciadv.adr2613.
The Jezero crater floor features a suite of related, iron-rich lavas that were examined and sampled by the Mars 2020 rover Perseverance, and whose textures, minerals, and compositions were characterized by the Planetary Instrument for X-ray Lithochemistry (PIXL). This suite, known as the Máaz formation (fm), includes dark-toned basaltic/trachy-basaltic rocks with intergrown pyroxene, plagioclase feldspar, and altered olivine and overlying trachy-andesitic lava with reversely zoned plagioclase phenocrysts in a K-rich groundmass. Feldspar thermal disequilibrium textures indicate that they were carried from their crustal staging area. Bulk and mafic minerals have very high FeO and low MgO to FeO ratios, which are partially reproduced by thermodynamic models involving high-degree fractional crystallization of a gabbroic assemblage and possibly also assimilation of iron-rich basement. Together, these in situ constraints on petrogenesis provide a uniquely detailed record of intracrustal processes beneath Jezero crater during a time period not represented by Mars samples to date.
杰泽罗陨石坑底部有一套相关的富铁熔岩,“毅力号”火星2020探测器对其进行了检查和采样,其纹理、矿物和成分由X射线岩石化学行星仪器(PIXL)进行了表征。这套熔岩被称为马阿兹组(fm),包括深色的玄武质/粗面玄武质岩石,其中有共生的辉石、斜长石以及蚀变的橄榄石,还有覆盖其上的粗面安山质熔岩,其富钾基质中有反向环带的斜长石斑晶。长石的热不平衡纹理表明它们是从地壳的暂存区搬运而来的。块状和镁铁质矿物具有非常高的FeO以及低的MgO与FeO比值,这在一定程度上可由涉及辉长岩组合高度分离结晶以及可能还有富铁基底同化作用的热力学模型再现。总之,这些对岩石成因的原位限制提供了杰泽罗陨石坑下方地壳过程在一个迄今尚无火星样本代表的时间段内独特而详细的记录。