1) electrical heat energy

电热能
2) heat and electricity.

热能,电能。
3) thermoelectric property

热电性能
1.
The relations between electronic structure,chemical bonds and thermoelectric property of misfit layered cobaltite of Ca_3Co_4 O_9 are studied using the den- sity function and discrete variation method(DFT-DVM).
Ca_3Co_4O_9是一类很有希望的新型氧化物热电材料,用离散变分密度泛函方法(DFT-DVM)计算了失配层钴酸盐Ca_3Co_4O_9的电子结构和化学键,讨论了它们与热电性能之间的关系。
2.
The relations between electronic structure,chemical bond and thermoelectric property of misfit layered cobaltite of Ca_3Co_(4)O_9 and La-doped series are studied using density function and discrete variation method (DFT-DVM).
用离散变分密度泛函方法(DFT DVM)计算了失配层钴酸盐Ca3Co4O9及其掺La系列,讨论了电子结构、化学键等与热电性能之间的关系。
3.
The relation between electronic structure,chemical bond and thermoelectric property is discussed.
用离散变分密度泛函方法(DFT DVM)计算了钴酸盐Ca3Co2O6及其掺镍体系,讨论了电子结构,化学键等与热电性能之间的关系。
4) thermoelectric properties

热电性能
1.
Synthesis and thermoelectric properties of p-type Ba_8Ga_(16)Zn_xGe_(30-x) clathrates;

Zn掺杂p型Ba_8Ga_(16)ZnxGe_(30-x)笼合物的合成及热电性能
2.
Preparation and thermoelectric properties of Ti_(1-x)(Hf_(0·919)Zr_(0·08))_xNiSn;

Ti_(1-x)(Hf_(0·919)Zr_(0·08))_xNiSn的制备及热电性能
3.
Synthesis and thermoelectric properties of dual-atom filled p-type Ca_mCe_nFe_xCo_(4-x)Sb_(12) compounds;
Ca和Ce双原子复合填充p型Ca_mCe_nFe_xCo_(4-x)Sb_(12)化合物的合成及热电性能
5) thermoelectric performance

热电性能
1.
Measuring technology for thermoelectric performance of the thermoelectric material with nanowire array structure;
纳米线阵列结构温差电材料热电性能测试技术
2.
Microstructure and single crystal s thermoelectric performance of B-doped CoSi;

B掺杂CoSi的微观组织和单晶热电性能
3.
Studies on preparation of poly(3,4-ethylenedioxythiophene) and its thermoelectric performance
聚(3,4-二氧乙撑噻吩)的制备及其热电性能研究
6) electric heating property

电热性能
1.
The phase composition, microstructure and electric heating property were analyzed and tested using XRD, SEM and numerical thermoscope, etc.
采用X射线衍射(XRD)、扫描电镜(SEN)、数字测温仪等分析和测试了所研制试样的相组成、显微结构以及电热性能。
补充资料:软X射线显现电热能谱 SXAPS
分子式:
CAS号:
性质:将电子束射于固体上,当其能量超过显现能量才能激发出特定的X射线。测量和跟踪激发的X射线强度与入射电子能量的关系可了解表面组成,因为当因吸附等原因而引起表面组成变化时其相应的电势谱峰发生变化。但是,在分析表面组成上SXAPS的灵敏度远不及俄歇电子能谱(AES)。
CAS号:
性质:将电子束射于固体上,当其能量超过显现能量才能激发出特定的X射线。测量和跟踪激发的X射线强度与入射电子能量的关系可了解表面组成,因为当因吸附等原因而引起表面组成变化时其相应的电势谱峰发生变化。但是,在分析表面组成上SXAPS的灵敏度远不及俄歇电子能谱(AES)。
说明:补充资料仅用于学习参考,请勿用于其它任何用途。
参考词条