有序的异质接口使温度不敏感和超高能量存储的多层陶电容器成为可能
Xiafeng He1,2, Jian Wang3, Yuxiao Du4
1School of Physical Science and Technology, Guangxi University, Nanning, China.
Advanced materials (Deerfield Beach, Fla.)
|January 27, 2026
概括
研究人员开发了先进的无多层陶电容器 (MLCC),具有增强的能量储存和热稳定性. 这一突破利用了下一代电子系统的有序异质接口.
科学领域:
- 材料科学 材料科学 材料科学
- 陶工程 陶工程
- 储能 储能 储能 储能 储能 储能
背景情况:
- 开发具有高能量存储密度和热稳定的无多层陶电容器 (MLCC) 对先进的电子技术至关重要.
- 现有的材料经常面临能量密度和热性能之间的权衡.
研究的目的:
- 为了提高无MLCC的能量储存密度和热稳定性.
- 研究有序异质接口对材料性能的影响.
主要方法:
- 在0.6SrTiO3-0.4Bi0.5Na0.5TiO3 (0.6ST-0.4BNT) 无陶中嵌入并行对齐的Al2O3板.
- 构建有序异质接口以抑制电荷载体的注入和传输.
主要成果:
- 实现了超高的可回收能量储存密度16.0 J cm-3.3.
- 达到了1140kVcm-1.1的巨大的断裂强度.
- 证明了优越的热稳定性,在20-160°C之间<3%的变化.
结论:
- 顺序异质接口工程是开发热稳定,高密度储能材料的有希望的策略.
- 经过修改的0.6ST-0.4BNTMLCC显示出下一代应用的潜力.
- 这种方法克服了当前介电陶的局限性.
相关概念视频
Energy Stored in Capacitors
1.1K
A parallel plate capacitor, when connected to a battery, develops a potential difference across its plates. This potential difference is key to the operation of the capacitor, as it determines how much electrical energy the capacitor can store.
By integrating the equation that relates voltage and current in a capacitor, one can derive an equation for the voltage across the capacitor at any given time. This equation is crucial in understanding and predicting the behavior of capacitors in...
By integrating the equation that relates voltage and current in a capacitor, one can derive an equation for the voltage across the capacitor at any given time. This equation is crucial in understanding and predicting the behavior of capacitors in...
1.1K
Energy Stored in a Capacitor
4.6K
When an archer pulls the string in a bow, he saves the work done in the form of elastic potential energy. When he releases the string, the potential energy is released as kinetic energy of the arrow. A capacitor works on the same principle in which the work done is saved as electric potential energy. The potential energy (UC) could be calculated by measuring the work done (W) to charge the capacitor.
4.6K
Effects of Temperature on Free Energy
28.2K
The spontaneity of a process depends upon the temperature of the system. Phase transitions, for example, will proceed spontaneously in one direction or the other depending upon the temperature of the substance in question. Likewise, some chemical reactions can also exhibit temperature-dependent spontaneities. To illustrate this concept, the equation relating free energy change to the enthalpy and entropy changes for the process is considered:
28.2K
Energy Stored in a Capacitor: Problem Solving
1.7K
In 1749, Benjamin Franklin coined the word battery for a series of capacitors connected to store energy. Capacitors store electric potential energy that can be released over a short time. This property means capacitors have a wide range of applications.
Capacitor-discharge ignition is a type of ignition system commonly found in small engines where the energy released from a capacitor ignites an induction coil that, in turn, fires the spark plug.
To calculate the energy stored in a capacitor of...
Capacitor-discharge ignition is a type of ignition system commonly found in small engines where the energy released from a capacitor ignites an induction coil that, in turn, fires the spark plug.
To calculate the energy stored in a capacitor of...
1.7K
Sugars as Energy Storage Molecules
9.9K
Sugar (a simple carbohydrate) metabolism (chemical reactions) is a classic example of the many cellular processes that use and produce energy. Living things consume sugar as a major energy source because sugar molecules have considerable energy stored within their bonds. Consumed carbohydrates have their origins in photosynthesizing organisms like plants. During photosynthesis, plants use the energy of sunlight to convert carbon dioxide gas into sugar molecules, like glucose. Because this...
9.9K
ATP Energy Storage and Release
14.3K
ATP is a highly unstable molecule. Unless quickly used to perform work, ATP spontaneously dissociates into ADP and inorganic phosphate (Pi), and the free energy released during this process is lost as heat. The energy released by ATP hydrolysis is used to perform work inside the cell and depends on a strategy called energy coupling. Cells couple the exergonic reaction of ATP hydrolysis with endergonic reactions, allowing them to proceed.
One example of energy coupling using ATP involves a...
One example of energy coupling using ATP involves a...
14.3K


