Comment on `Controversy concerning the definition of quark and gluon angular momentum' by Elliot Leader (arXiv:1101.5956, PRD 83, 096012 (2011))
arXiv:1111.0678 · doi:10.1103/PhysRevD.85.058901
Abstract
It is argued by the author that the canonical form of the quark energy-momentum tensor with a partial derivative instead of the covariant derivative is the correct definition for the quark momentum and angular momentum fraction of the nucleon in covariant quantization. Although it is not manifestly gauge invariant, its matrix elements in the nucleon will be non-vanishing and are gauge invariant. We test this idea in the path-integral quantization by calculating correlation functions on the lattice with a gauge-invariant nucleon interpolation field and replacing the gauge link in the quark lattice momentum operator with unity, which corresponds to the partial derivative in the continuum. We find that the ratios of three-point to two-point functions are zero within errors for both the u and d quarks, contrary to the case without setting the gauge links to unity.
2 pages, 2 figures
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- Notes on the orbital angular momentum of quarks in the nucleon
- Is gauge-invariant complete decomposition of the nucleon spin possible ?
- Gluon Spin, Canonical Momentum, and Gauge Symmetry
- More on the relation between the two physically inequivalent decompositions of the nucleon spin and momentum
- High-energy physics with particles carrying non-zero orbital angular momentum