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In heterotic [[string theory]], the '''[[Andrew Strominger|Strominger]]'s equations''' are the set of equations that are necessary and sufficient conditions for spacetime [[supersymmetry]]. It is derived by requiring the 4-dimensional spacetime to be maximally symmetric, and adding a warp factor on the internal 6-dimensional manifold.<ref name="Strominger">Strominger, ''[http://www.sciencedirect.com/science?_ob=ArticleURL&_udi=B6TVC-4718X2H-16M&_user=126524&_rdoc=1&_fmt=&_orig=search&_sort=d&view=c&_version=1&_urlVersion=0&_userid=126524&md5=c045d0aabfb064c58379a5efdf05e008 Superstrings with Torsion]'', Nuclear Physics B274 (1986) 253-284</ref>


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Consider a metric <math>\omega</math> on the real 6-dimensional internal manifold ''Y'' and a Hermitian metric ''h'' on a vector bundle ''V''. The equations are:
 
# The 4-dimensional spacetime is [[Minkowski]], i.e., <math>g=\eta</math>.
# The internal manifold ''Y'' must be complex, i.e., the [[Nijenhuis tensor]] must vanish <math>N=0</math>.
# The [[Hermitian form]] <math>\omega</math> on the complex threefold ''Y'', and the Hermitian metric ''h'' on a vector bundle ''V'' must satisfy,
## <math>\partial\bar{\partial}\omega=i\text{Tr}F(h)\wedge F(h)-i\text{Tr}R^{-}(\omega)\wedge R^{-}(\omega),</math>
## <math>d^{\dagger}\omega=i(\partial-\bar{\partial})\text{ln}||\Omega ||,</math> <br /> where <math>R^{-}</math> is the Hull-curvature two-form of <math>\omega</math>, ''F'' is the curvature of ''h'', and <math>\Omega</math> is the holomorphic ''n''-form; ''F'' is also known in the physics literature as the [[Yang-Mills]] field strength. Li and Yau showed that the second condition is equivalent to <math>\omega</math> being conformally balanced, i.e., <math>d(||\Omega ||_\omega \omega^2)=0</math>.<ref name="LiYau">Li and Yau, ''[http://www.projecteuclid.org/DPubS?verb=Display&version=1.0&service=UI&handle=euclid.jdg/1143572017&page=record The Existence of Supersymmetric String Theory with Torsion]'', J. Differential Geom. Volume 70, Number 1 (2005), 143-181</ref>
# The Yang-Mills field strength must satisfy,
## <math>\omega^{a\bar{b}} F_{a\bar{b}}=0,</math>
## <math>F_{ab}=F_{\bar{a}\bar{b}}=0.</math>
 
These equations imply the usual field equations, and thus are the only equations to be solved.
 
However, there are topological obstructions in obtaining the solutions to the equations;
 
# The second [[Chern class]] of the manifold, and the second Chern class of the gauge field must be equal, i.e., <math>c_2(M)=c_2(F)</math>
# A [[holomorphic]] ''n''-form <math>\Omega</math> must exists, i.e., <math> h^{n,0}=1</math> and <math>c_1=0</math>.
 
In case ''V'' is the tangent bundle <math>T_Y</math> and <math>\omega</math> is Kähler, we can obtain a solution of these equations by taking the [[Calabi-Yau]] metric on <math>Y</math> and <math>T_Y</math>.
 
Once the solutions for the Strominger's equations are obtained, the warp factor <math>\Delta</math>, dilaton <math>\phi</math> and the background flux ''H'', are determined by
# <math>\Delta(y)=\phi(y)+\text{constant}</math>,
# <math>\phi(y)=\frac{1}{8} \text{ln}||\Omega||+\text{constant}</math>,
# <math>H=\frac{i}{2}(\bar{\partial}-\partial)\omega.</math>
 
==References==
{{reflist}}
 
* Cardoso, Curio, Dall'Agata, Lust, Manousselis, and Zoupanos, ''[http://www.arxiv.org/pdf/hep-th/0211118 Non-Kähler String Backgrounds and their Five Torsion Classes]'', hep-th/0211118
 
[[Category:String theory]]

Latest revision as of 01:34, 10 March 2013

In heterotic string theory, the Strominger's equations are the set of equations that are necessary and sufficient conditions for spacetime supersymmetry. It is derived by requiring the 4-dimensional spacetime to be maximally symmetric, and adding a warp factor on the internal 6-dimensional manifold.[1]

Consider a metric ω on the real 6-dimensional internal manifold Y and a Hermitian metric h on a vector bundle V. The equations are:

  1. The 4-dimensional spacetime is Minkowski, i.e., g=η.
  2. The internal manifold Y must be complex, i.e., the Nijenhuis tensor must vanish N=0.
  3. The Hermitian form ω on the complex threefold Y, and the Hermitian metric h on a vector bundle V must satisfy,
    1. ¯ω=iTrF(h)F(h)iTrR(ω)R(ω),
    2. dω=i(¯)ln||Ω||,
      where R is the Hull-curvature two-form of ω, F is the curvature of h, and Ω is the holomorphic n-form; F is also known in the physics literature as the Yang-Mills field strength. Li and Yau showed that the second condition is equivalent to ω being conformally balanced, i.e., d(||Ω||ωω2)=0.[2]
  4. The Yang-Mills field strength must satisfy,
    1. ωab¯Fab¯=0,
    2. Fab=Fa¯b¯=0.

These equations imply the usual field equations, and thus are the only equations to be solved.

However, there are topological obstructions in obtaining the solutions to the equations;

  1. The second Chern class of the manifold, and the second Chern class of the gauge field must be equal, i.e., c2(M)=c2(F)
  2. A holomorphic n-form Ω must exists, i.e., hn,0=1 and c1=0.

In case V is the tangent bundle TY and ω is Kähler, we can obtain a solution of these equations by taking the Calabi-Yau metric on Y and TY.

Once the solutions for the Strominger's equations are obtained, the warp factor Δ, dilaton ϕ and the background flux H, are determined by

  1. Δ(y)=ϕ(y)+constant,
  2. ϕ(y)=18ln||Ω||+constant,
  3. H=i2(¯)ω.

References

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  1. Strominger, Superstrings with Torsion, Nuclear Physics B274 (1986) 253-284
  2. Li and Yau, The Existence of Supersymmetric String Theory with Torsion, J. Differential Geom. Volume 70, Number 1 (2005), 143-181