English

Tensor Rank and Stochastic Entanglement Catalysis for Multipartite Pure States

Quantum Physics 2011-03-21 v3

Abstract

The tensor rank (also known as generalized Schmidt rank) of multipartite pure states plays an important role in the study of entanglement classifications and transformations. We employ powerful tools from the theory of homogeneous polynomials to investigate the tensor rank of symmetric states such as the tripartite state W3=13(100+010+001)\ket{W_3}=\tfrac{1}{\sqrt{3}}(\ket{100}+\ket{010}+\ket{001}) and its NN-partite generalization WN\ket{W_N}. Previous tensor rank estimates are dramatically improved and we show that (i) three copies of W3\ket{W_3} has rank either 15 or 16, (ii) two copies of WN\ket{W_N} has rank 3N23N-2, and (iii) nn copies of WN\ket{W_N} has rank O(N). A remarkable consequence of these results is that certain multipartite transformations, impossible even probabilistically, can become possible when performed in multiple copy bunches or when assisted by some catalyzing state. This effect is impossible for bipartite pure states.

Keywords

Cite

@article{arxiv.1003.3059,
  title  = {Tensor Rank and Stochastic Entanglement Catalysis for Multipartite Pure States},
  author = {Lin Chen and Eric Chitambar and Runyao Duan and Zhengfeng Ji and Andreas Winter},
  journal= {arXiv preprint arXiv:1003.3059},
  year   = {2011}
}

Comments

PhysRevLett.105.200501