相关实验视频
Updated: May 17, 2026

07:04
High Precision Zinc Isotopic Measurements Applied to Mouse Organs
Published on: May 22, 2015
同位素证据证明了月球的起源
Randal C Paniello1, James M D Day, Frédéric Moynier
1Department of Earth and Planetary Sciences and McDonnell Center for Space Sciences, Washington University, St Louis, Missouri 63130, USA.
Nature
|October 19, 2012
概括
月球缺乏挥发性元素,月球岩石中的重同位素证明了这一点. 这表明月球形成撞击后的大规模蒸发,支持其巨大的撞击起源.
科学领域:
- 行星科学 行星科学
- 地质化学 地质化学
- 同位素地质学的同位素.
背景情况:
- 挥发性元素对行星进化至关重要,但它们的初始预算和早期太阳系形成期间的耗尽是不太了解的.
- 月球被认为是挥发性枯竭的,这意味着由于挥发性损失而导致中等挥发性元素的稳定同位素分离.
- 在挥发过程中表现出显著的同位素分离,使其成为行星挥发历史的有价值的标记物.
研究的目的:
- 为了研究月球的挥发性历史,使用同位素.
- 为了确定月球岩石中挥发性枯竭的程度和机制.
- 为了测试地球月球系统的巨大撞击假设.
主要方法:
- 高精度测量同位素和在月球岩石中的丰度.
- 月球同位素和丰度数据与陆地和火星样本的比较.
- 对同位素分离模式的分析,以推断挥发性损失过程.
主要成果:
- 月球上的岩石岩石显示在重同位素和较低的度比陆地和火星岩石岩石的缩.
- 地球和火星表现出广泛的同位素构成.
- 观察到的变化表明大规模的蒸发,可能是月球后形成,而不是小火山过程.
结论:
- 月球岩石的同位素组成提供了月球通过蒸发的挥发性枯竭的证据.
- 这些发现支持地球和月球起源的巨大撞击假说.
- 这项研究提供了有关陆地行星早期挥发性演变的见解.
相关概念视频
Origin of Cellular Life
The origin of life on Earth is a complex and enigmatic event rooted in ancient biochemical processes and geological conditions. Experimental evidence supports the hypothesis that life began with the spontaneous formation of organic molecules such as RNA nucleotides, amino acids, and lipids under early Earth conditions. Factors like volcanic activity, intense UV radiation, and a reducing atmosphere without free oxygen likely facilitated these reactions. Hydrothermal vents on the ocean floor are...
Gravitation
In the years before Newton, a general belief prevailed that different laws governed objects in the sky than objects on Earth. When Kepler wrote down the three laws of planetary motion, explaining in detail the geometrical properties of the planetary orbits around the Sun, there was no immediate idea to discern their connection with more fundamental laws. It was Isaac Newton who, in 1665–66, figured out the connection between planetary motion, the motion of the moon around the Earth, and the...
Origin of Photosynthesis
Photosynthesis represents a fundamental biological process that transformed Earth's atmosphere and paved the way for complex life. Emerging roughly 3.4–3.8 billion years ago, the earliest photosynthetic organisms harnessed light energy to produce organic compounds. These anoxygenic phototrophs used electron donors like hydrogen sulfide (H₂S) or ferrous iron (Fe²⁺), rather than water, and did not release molecular oxygen (O₂) as a byproduct. Various groups, including green sulfur and purple...
Gravity between Spherical Bodies
Newton's law of gravitation describes the gravitational force between any two point masses. However, for extended spherical objects like the Earth, the Moon, and other planets, the law holds with an assumption that masses of spherical objects are concentrated at their respective centers.
This assumption can be proved easily by showing that the expression for gravitational potential energy between a hollow sphere of mass (M) and a point mass (m) is the same as it would be for a pair of extended...
This assumption can be proved easily by showing that the expression for gravitational potential energy between a hollow sphere of mass (M) and a point mass (m) is the same as it would be for a pair of extended...
Conditions on Early Earth
Around 4 billion years ago, oceans began to condense on earth while volcanic eruptions released nitrogen, carbon dioxide, methane, ammonia, and hydrogen into the primordial atmosphere. However, organisms with the characteristics of life were not initially present on earth. Scientists have used experimentation to determine how organisms evolved that could grow, reproduce, and maintain an internal environment.
Conditions on Early Earth
Around 4 billion years ago, oceans began to condense on earth while volcanic eruptions released nitrogen, carbon dioxide, methane, ammonia, and hydrogen into the primordial atmosphere. However, organisms with the characteristics of life were not initially present on earth. Scientists have used experimentation to determine how organisms evolved that could grow, reproduce, and maintain an internal environment.

