<p>Over the last two decades, the competing orders in high-<i>T</i><sub><i>c</i></sub> cuprates have been intensely studied, such as charge density waves (CDW) and pair density waves (PDW), which are thought to play a crucial role in high-temperature superconductivity. Using the <i>t</i>-<i>J</i> model on a square lattice as the simplest model for high-<i>T</i><sub><i>c</i></sub> cuprates, we employed the fermionic tensor product state (fTPS) method for numerical investigations. Here we show, to the best of our knowledge, several types of PDW states within the low-energy subspace of the <i>t</i>-<i>J</i> model are unveiled thanks to the fermionic cluster update method, alongside the well-known <i>d</i>-wave state. In particular, a kind of <i>C</i><sub>4</sub> symmetric plaquette PDW state is most likely to survive at low dopings <i>δ</i>&#xa0;&lt;&#xa0;5%. We believe that the competition among these states in the underdoped region suggests the potential existence of a fluctuating quantum liquid of PDW states, which could serve as a natural starting point for exploring the pseudogap phase and understanding the key mechanisms of d-wave superconductivity. Furthermore, we discuss the potential experimental implications of our discovery.</p>

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Competing pair density wave orders in the square lattice t-J model

  • Wayne Zheng,
  • Zheng-Yuan Yue,
  • Jian-Hao Zhang,
  • Zheng-Cheng Gu

摘要

Over the last two decades, the competing orders in high-Tc cuprates have been intensely studied, such as charge density waves (CDW) and pair density waves (PDW), which are thought to play a crucial role in high-temperature superconductivity. Using the t-J model on a square lattice as the simplest model for high-Tc cuprates, we employed the fermionic tensor product state (fTPS) method for numerical investigations. Here we show, to the best of our knowledge, several types of PDW states within the low-energy subspace of the t-J model are unveiled thanks to the fermionic cluster update method, alongside the well-known d-wave state. In particular, a kind of C4 symmetric plaquette PDW state is most likely to survive at low dopings δ < 5%. We believe that the competition among these states in the underdoped region suggests the potential existence of a fluctuating quantum liquid of PDW states, which could serve as a natural starting point for exploring the pseudogap phase and understanding the key mechanisms of d-wave superconductivity. Furthermore, we discuss the potential experimental implications of our discovery.