What is the fundamental group of the Möbius strip?
Is it given by $\{-1,1\}$ as the lemma of Synge supposes, or am I wrong and it does not apply there?
The fundamental group of the Möbius strip
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$\begingroup$
algebraic-topology
fundamental-groups
3 Answers
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The moebius strip is homotopy-equivalent to the circle, so has the same fundamental group which is $\mathbb Z$.
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2Thank you so so far.So why does the lemma of Synge not apply here? It says that a manifold in even dimension has fundamental group {-1,1}, if it is not orientable. – 2012-10-27
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12Synge only applies if you have a compact manifold with no boundary and positive curvature. The Mobius band has a boundary (or is not compact), and has no (complete) metric of positive curvature. – 2012-10-27
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0Thank you! That helped a lot! – 2012-10-27
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It is $\mathbb{Z}$. You can prove it via seeing the Möbius strip as a quotient of a square , with sides identified properly. Draw a diagonal dividing this square, and show that the Möbius strip deformation retracts onto this circle .
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6Instead of the diagonal, you could use the line through the center of the square and parallel to the unidentified edges. – 2013-05-24
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The fundamental group of the moebius strip is $\{a,b|a^2=b^2\}$. Cf. http://www2.math.ou.edu/~forester/5863S14/fsol.pdf
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0That is actually the fundamental group of the Klein bottle, although it can be constructed using Mobius bands. – 2017-12-09