...
首页> 外文期刊>Foundations of Physics >Ortho- and Para-helium in Relativistic Schrödinger Theory
【24h】

Ortho- and Para-helium in Relativistic Schrödinger Theory

机译:相对论薛定er理论中的邻氦和对氦

获取原文
   

获取外文期刊封面封底 >>

       

摘要

The characteristic features of ortho- and para-helium are investigated within the framework of Relativistic Schrödinger Theory (RST). The emphasis lies on the conceptual level, where the geometric and physical properties of both RST field configurations are inspected in detail. From the geometric point of view, the striking feature consists in the splitting of the $mathfrak{u}(2)$ -valued bundle connection $mathcal{A}_{mu}$ into an abelian electromagnetic part (organizing the electromagnetic interactions between the two electrons) and an exchange part, which is responsible for their exchange interactions. The electromagnetic interactions are mediated by the usual four-potentials A μ and thus are essentially the same for both types of field configurations, where naturally the electrostatic forces (described by the time component A 0 of A μ) dominate their magnetostatic counterparts (described by the space part A of A μ). Quite analogously to this, the exchange forces are as well described in terms of a certain vector potential (B μ), again along the gauge principles of minimal coupling, so that also the exchange forces split up into an “electric” type ( $rightsquigarrow B_{0}$ ) and a “magnetic” type ( $rightsquigarrow {bf B}$ ). The physical difference of ortho- and para-helium is now that the first (ortho-) type is governed mainly by the “electric” kind of exchange forces and therefore is subject to a stronger influence of the exchange phenomenon; whereas the second (para-) type has vanishing “electric” exchange potential (B 0 ≡ 0) and therefore realizes exclusively the “magnetic” kind of interactions ( $rightsquigarrow {bf B}$ ), which, however, in general are smaller than their “electric” counterparts. The corresponding ortho/para splitting of the helium energy levels is inspected merely in the lowest order of approximation, where it coincides with the Hartree–Fock (HF) approximation. Thus RST may be conceived as a relativistic generalization of the HF approach where the fluid-dynamic character of RST implies many similarities with the density functional theory.
机译:在相对论薛定er理论(RST)的框架内研究了正氦和对氦的特征。重点在于概念层面,其中详细检查了两种RST场配置的几何和物理特性。从几何学的角度来看,惊人的特征在于将$ mathfrak {u}(2)$值的束连接$ mathcal {A} _ {mu} $分成一个阿贝尔电磁部分(组织之间的电磁相互作用)。两个电子)和一个交换部分,负责它们的交换相互作用。电磁相互作用是由通常的四电势Aμ介导的,因此对于两种类型的场配置都基本相同,其中静电力(由Aμ的时间分量A 0 来描述) 占主导地位(由Aμ的空间部分A 描述)。与此类似,交换力也按照一定的矢量电势(Bμ)进行描述,同样遵循最小耦合的规范原理,因此交换力也分成了“电”类型($ rightsquigarrow B_ {0} $)和“磁性”类型($ rightsquigarrow {bf B} $)。现在,正氦和对氦的物理差异在于,第一(正)类型主要受“电”类交换力支配,因此受交换现象的影响更大。而第二种(对位)具有消失的“电”交换势(B 0 ≡0),因此仅实现了“磁”相互作用($ rightsquigarrow {bf B} $),但是,通常,它们比“电气”同类产品小。氦能级的相应邻位/对位分裂仅以最低近似值进行检查,在此与Hartree-Fock(HF)近似值一致。因此,RST可以被认为是HF方法的相对论概括,其中RST的流体动力学特性暗示了与密度泛函理论的许多相似之处。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号