同位素证据表明巴芬岛岩中的一个核心成分
James W Dottin Iii1,2, Forrest Horton3, Conel M O'D Alexander1
1Earth and Planets Laboratory, Carnegie Institution for Science, 5241 Broad Branch Rd. NW, Washington, DC 20015, USA.
Science advances
|April 23, 2025
概括
火山岩中的 (H) 可能揭示了地球核心和地幔之间的化学交换. 巴芬岛岩中低与的比率 (δD) 表明H源于核心,影响了地幔的演变.
科学领域:
- 地质化学 地质化学
- 地质物理学 地质物理学
- 同位素地质学的同位素.
背景情况:
- 核心-地幔化学交换是地球进化的关键.
- -182和-3的异常表明核心-地幔交换.
- (H) 在核心中很丰富,可以作为标记物.
研究的目的:
- 调查地幔羽毛是否携带来自地球核心的气.
- 测量与 (δD) 的比率在玄武岩融中.
主要方法:
- 分析了来自巴芬岛的奥利文托管的玄武岩融入物.
- 测量的H/H比 (δD值).
主要成果:
- 观察到的平均 δD 值为每毫升 -144 ± 24.
- 这个值低于典型的上层地幔耗尽的估计值.
- 低的δD表明核心衍生的H,而不是岩分离或地污染.
结论:
- 在地幔羽毛中的同位素比率可以表明核心-地幔交换.
- 地质时间尺度上的交换可能会改变地幔的同位素组成.
- 这一过程可能会影响到源区域和上层地幔.
更多相关视频
06:04Simulation of the Planetary Interior Differentiation Processes in the Laboratory
Published on: November 15, 2013
11.5K
11:50Metal-silicate Partitioning at High Pressure and Temperature: Experimental Methods and a Protocol to Suppress Highly Siderophile Element Inclusions
Published on: June 13, 2015
12.4K
相关概念视频
Mass Spectrometry: Isotope Effect
1.8K
Most elements exist in nature as a mixture of isotopes. The isotopes differ in weight due to their respective number of neutrons. The molecular weight of a molecule is different depending on the specific isotope of its elements involved. As a result, the mass spectrum of the molecule exhibits peaks from the same fragment at multiple positions. The positions of these mass signals depend on the difference between the molecular mass. Furthermore, the intensity of these signals is dependent on the...
1.8K
Isothermal Processes
3.5K
A thermodynamic process that occurs at constant temperature is called an isothermal process. Heat slowly flows into the system or out of the system to maintain thermal equilibrium. Processes involving phase changes like water evaporation into steam or freezing water into ice at a constant temperature are examples of Isothermal Processes.
An ideal gas can also undergo isothermal expansion or compression.
For example, consider 1 mole of an ideal gas inside an isolated cylinder at initial volume V...
An ideal gas can also undergo isothermal expansion or compression.
For example, consider 1 mole of an ideal gas inside an isolated cylinder at initial volume V...
3.5K
Hess's Law
44.1K
There are two ways to determine the amount of heat involved in a chemical change: measure it experimentally, or calculate it from other experimentally determined enthalpy changes. Some reactions are difficult, if not impossible, to investigate and make accurate measurements for experimentally. And even when a reaction is not hard to perform or measure, it is convenient to be able to determine the heat involved in a reaction without having to perform an experiment.
44.1K
Atomic Mass
58.9K
Atoms — and the protons, neutrons, and electrons that compose them — are extremely small. For example, a carbon atom weighs less than 2 × 10−23 g. When describing the properties of tiny objects such as atoms, we use appropriately small units of measure, such as the atomic mass unit (amu). The amu was originally defined based on hydrogen, the lightest element, then later in terms of oxygen. Since 1961, it has been defined with regard to the most abundant isotope of...
58.9K
Elements: Chemical Symbols and Isotopes
103.9K
A chemical symbol is an abbreviation used to indicate an element or an atom of an element. For example, the symbol for mercury is Hg. The same symbol is used to indicate one atom of mercury (microscopic domain) or to label a container of many atoms of the element mercury (macroscopic domain).
Some symbols are derived from the common English name of the element; others are abbreviations of the name in another language — Latin, Greek or German. For example, the symbol for aluminum (common...
Some symbols are derived from the common English name of the element; others are abbreviations of the name in another language — Latin, Greek or German. For example, the symbol for aluminum (common...
103.9K
Noble Gases
17.2K
The elements in group 18 are noble gases (helium, neon, argon, krypton, xenon, and radon). They earned the name “noble” because they were assumed to be nonreactive since they have filled valence shells. In 1962, Dr. Neil Bartlett at the University of British Columbia proved this assumption to be false.
17.2K
