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The fossil record documents only a small fraction of all organisms that have ever inhabited Earth. Fossilization is a rare process, and most organisms never become fossils. Moreover, the fossil record only exhibits fossils that have been discovered. Nevertheless, sedimentary rock fossils of long-lived, abundant, hard-bodied organisms dominate the fossil record. These fossils offer valuable information, such as an organism's physical form, behavior, and age. Studying the fossil record helps...
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The amount of energy required to remove the most loosely bound electron from a gaseous atom in its ground state is called its first ionization energy (IE1). The first ionization energy for an element, X, is the energy required to form a cation with 1+ charge:
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Hydronium and hydroxide ions are present both in pure water and in all aqueous solutions, and their concentrations are inversely proportional as determined by the ion product of water (Kw). The concentrations of these ions in a solution are often critical determinants of the solution’s properties and the chemical behaviors of its other solutes. Two different solutions can differ in their hydronium or hydroxide ion concentrations by a million, billion, or even trillion times. A common means of...
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Free energy—abbreviated as G for the scientist Gibbs who discovered it—is a measurement of useful energy that can be extracted from a reaction to do work. It is the energy in a chemical reaction that is available after entropy is accounted for. Reactions that take in energy are considered endergonic and reactions that release energy are exergonic. Plants carry out endergonic reactions by taking in sunlight and carbon dioxide to produce glucose and oxygen. Animals, in turn, break...
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Chemical reactions, such as those that occur when you light a match, involve changes in energy as well as matter.
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Author Spotlight: Leaf Trait Analysis for Climate and Ecology Reconstruction in Modern and Ancient Plant Communities
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Escala viable mínima de energía fósil en la escala viable mínima de energía fósil.

Joshua Lappen1, Emily Grubert1

  • 1Keough School of Global Affairs, University of Notre Dame, Notre Dame, IN, USA.

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|January 29, 2026
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La eliminación gradual de los sistemas de energía fósil puede introducir riesgos ocultos para la infraestructura. Abordar estas amenazas invisibles es crucial para garantizar la seguridad y el éxito de los esfuerzos de descarbonización.

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Área de la Ciencia:

  • La infraestructura energética de las infraestructuras energéticas
  • Ciencias ambientales Ciencias ambientales.
  • Evaluación de la evaluación de riesgos.

Sus antecedentes:

  • La transición global a las energías renovables requiere la eliminación gradual de la infraestructura existente de combustibles fósiles.
  • Esta transición presenta desafíos complejos, incluida la posibilidad de riesgos imprevistos asociados con sistemas envejecidos o inadecuadamente desmantelados.
  • Garantizar la seguridad y alcanzar los objetivos de descarbonización requiere una comprensión profunda de estas amenazas emergentes de infraestructura.

Objetivo del estudio:

  • Identificar y analizar posibles amenazas invisibles a las infraestructuras.
  • Evaluar las implicaciones de estas amenazas para la seguridad y la descarbonización.
  • Informar estrategias para mitigar riesgos durante la transición energética.

Principales métodos:

  • Revisión sistemática de los estudios de caso de desmantelamiento de la infraestructura energética.
  • Análisis de los datos históricos sobre accidentes industriales e incidentes ambientales.
  • Modelado de los modos de fallo potencial en los sistemas de energía heredados.

Principales resultados:

  • Identificó vulnerabilidades en infraestructuras críticas, incluyendo contaminación subterránea e inestabilidad estructural.
  • Riesgos potenciales de seguridad cuantificados para el personal y el público.
  • Evaluó el impacto de las fallas de la infraestructura en los plazos y costos de descarbonización.

Conclusiones:

  • La eliminación gradual de los sistemas de energía fósil plantea riesgos infraestructurales significativos, a menudo no reconocidos.
  • La evaluación y gestión de riesgos proactivos son esenciales para una descarbonización segura y efectiva.
  • Se necesita más investigación para desarrollar estrategias integrales para administrar la infraestructura energética heredada.