Investigation of the magnetism of Cu3Mo2O9 single crystal, which has antiferromagnetic (AF) linear chains interacting with AF dimers, reveals an AF second-order phase transition at TN=7.9 K. Although weak ferromagnetic-like behavior appears at lower temperatures in low magnetic fields, complete remanent magnetization cannot be detected down to 0.5 K. However, a jump is observed in the magnetization below weak ferromagnetic (WF) phase transition at Tc≃2.5 K when a tiny magnetic field along the a axis is reversed, suggesting that the coercive force is very weak. A component of magnetic moment parallel to the chain forms AF long-range order (LRO) below TN, while a perpendicular component is disordered above Tc at zero magnetic field and forms WF-LRO below Tc. Moreover, the WF-LRO is also realized with applying magnetic fields even between Tc and TN. These results are explainable by both magnetic frustration among symmetric exchange interactions and competition between symmetric and asymmetric Dzyaloshinskii-Moriya exchange interactions.
@article{arxiv.0803.2787,
title = {Successive phase transitions to antiferromagnetic and weak-ferromagnetic long-range orders in quasi-one-dimensional antiferromagnet Cu$_3$Mo$_2$O$_9$},
author = {Tomoaki Hamasaki and Tomoyuki Ide and Haruhiko Kuroe and Tomoyuki Sekine and Masashi Hase and Ichiro Tsukada and Toshiro Sakakibara},
journal= {arXiv preprint arXiv:0803.2787},
year = {2009}
}