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首次对火星大气溅射的直接观测。

First direct observations of atmospheric sputtering at Mars.

作者信息

Curry Shannon M, Hara Takuya, Luhmann Janet G, Leblanc Francois, Jolitz Rebecca, Mitchell David, Modolo Ronan, Brain David A, Espley Jared, Benna Mehdi, Halekas Jasper

机构信息

Laboratory for Atmospheric and Space Physics, University of Colorado Boulder, Boulder, CO 80304, USA.

Space Sciences Laboratory, University of California at Berkeley, Berkeley, CA 94720.

出版信息

Sci Adv. 2025 May 30;11(22):eadt1538. doi: 10.1126/sciadv.adt1538. Epub 2025 May 28.

Abstract

Billions of years ago, Mars' ability to sustain liquid water waned as the solar wind and radiation began to erode the atmosphere. Sputtering is an atmospheric escape process that may have been dominant during earlier epochs of our Sun according to isotopic evidence, but is difficult to detect under current solar conditions. Using over 9 years of data from the Mars Atmosphere and Volatile Evolution mission, we present the first observations of present-day sputtering in the martian upper atmosphere. By correlating argon densities with solar electric fields, we find that sputtered rates of argon are over four times higher than model predictions. We also present evidence of enhanced sputtering during a solar storm, offering a glimpse at more intense conditions in the early solar system. Observationally establishing the role of sputtering in the loss of Mars' atmosphere is critical to understanding the conditions that allowed liquid water to exist on the martian surface and the implications for habitability.

摘要

数十亿年前,随着太阳风与辐射开始侵蚀大气层,火星维持液态水的能力逐渐衰退。溅射是一种大气逃逸过程,根据同位素证据,在太阳早期阶段它可能占据主导地位,但在当前的太阳条件下难以探测到。利用来自火星大气与挥发物演化任务超过9年的数据,我们首次观测到了火星高层大气中当下的溅射现象。通过将氩密度与太阳电场相关联,我们发现氩的溅射速率比模型预测值高出四倍多。我们还展示了太阳风暴期间溅射增强的证据,让我们得以一窥早期太阳系中更为强烈的状况。通过观测确定溅射在火星大气损失中所起的作用,对于理解使液态水能够存在于火星表面的条件以及对宜居性的影响至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01d7/12118633/e34f9b8ac441/sciadv.adt1538-f1.jpg

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