论文标题
poded bafe $ _2 $ as $ _2 $的量子关键点附近的破碎对称状态的可能签名可能的签名:拉曼光谱研究
Possible signature of broken symmetry state near the quantum critical point in P doped BaFe$_2$As$_2$: A Raman spectroscopy study
论文作者
论文摘要
我们研究铁 - 刺剂化合物Bafe $ _2 $(AS $ _ {1-X} $ P $ _X $)$ _ 2 $ x $ \ sim $ 0.23,在倍增相图中,量子浓度接近量子和增强的浓度。运输测量证实了从四方到正骨相的60k处的磁结构过渡,然后是16K以下的超导过渡。温度和极化依赖性拉曼光谱表明,在211 cm $^{ - 1} $处有一个声子模式,其次是400至700 cm $^{ - 1} $之间的两种宽模式(BM),温度范围为15 MeV,温度范围为15 MEV。在非驱动状态下,声子模式表现出预期的极化依赖性以及由于过度性而引起的温度演化,对于BM,观察到强烈的各向异性和热惰性行为。掺杂和未掺杂的Bafe $ _2 $的电子结构计算是$ _2 $表明,Fe $ d_ {xz} $和$ d_ {yz} $ orbitals并未在四方阶段分开,而拆分能量为13.5 mev在有理由地分离的实验中,在分离的能量中,造成了实验的分离阶段。我们认为,报告的BM可能是电子拉曼散射的签名,涉及Fe $^{2+} $ $ d $ - 轨道的晶体场水平,这是由于掺杂系统中父级化合物的c $ _4 $对称性的本地破坏。
We study the iron-pnictide compound BaFe$_2$(As$_{1-x}$P$_x$)$_2$ for x $\sim$0.23, with a doping concentration near quantum criticality and enhanced nematic fluctuating state in the doping-temperature phase diagram. Transport measurements confirm the presence of a magneto-structural transition at 60K from the tetragonal to the orthorhombic phase, followed by a superconducting transition below 16K. The temperature and polarisation dependent Raman spectra reveal that there is a phonon mode at 211 cm$^{-1}$, followed by two broad modes (BM) between 400 and 700 cm$^{-1}$, having an energy difference of 15 meV, in the temperature range between 300K and 80K. In the non-superconducting state, the phonon mode exhibits expected polarization dependence as well as temperature evolution due to anharmonicity, strong anisotropic and thermally inert behaviour are observed for the BM. Electronic structure calculations for doped and undoped BaFe$_2$As$_2$ show that while Fe $d_{xz}$ and $d_{yz}$ orbitals do not split in the tetragonal phase, the splitting energy is 13.5 meV in the orthorhombic phase of the doped system, which is reasonably close to the experimentally observed value of the energy separation of the BM. We believe that reported BM possibly are the signature of electronic Raman scattering involving the crystal field levels of $d$-orbitals of Fe$^{2+}$ due to local breaking of the C$_4$ symmetry of the parent compound in the doped system.