Mengxia Sun, Xu He, Mingyao Chen, Chi Sin Tang*, Xiongfang Liu, Liang Dai, Jishan Liu, Zhigang Zeng, Shuo Sun, Mark B. H. Breese, Chuanbing Cai, Le Wang*, Yingge Du, Andrew T. S. Wee and Xinmao Yin*,
{"title":"外延过氧化物镍酸盐中的可调谐集体激发","authors":"Mengxia Sun, Xu He, Mingyao Chen, Chi Sin Tang*, Xiongfang Liu, Liang Dai, Jishan Liu, Zhigang Zeng, Shuo Sun, Mark B. H. Breese, Chuanbing Cai, Le Wang*, Yingge Du, Andrew T. S. Wee and Xinmao Yin*, ","doi":"10.1021/acsphotonics.4c00210","DOIUrl":null,"url":null,"abstract":"<p >The formation of plasmons through the collective excitation of charge density has generated intense discussions, offering insights into fundamental sciences and potential applications. While the underlying physical principles have been well-established, the effects of many-body interactions and orbital hybridization on plasmonic dynamics remain understudied. In this work, we present the observation of conventional metallic and correlated plasmons in epitaxial La<sub>1–<i>x</i></sub>Sr<sub><i>x</i></sub>NiO<sub>3</sub> (LSNO) films with varying Sr doping concentrations (<i>x</i> = 0, 0.125, 0.25), unveiling their intriguing evolution. Unlike samples at other doping concentrations, the <i>x</i> = 0.125 intermediate doping sample does not exhibit the correlated plasmons despite showing high optical conductivity. Through a comprehensive experimental investigation using spectroscopic ellipsometry and X-ray absorption spectroscopy, the O2p-Ni3d orbital hybridization for LSNO with a doping concentration of <i>x</i> = 0.125 is found to be significantly enhanced, alongside a considerable weakening of its effective correlation <i>U</i>*. These factors account for the absence of correlated plasmons and the high optical conductivity observed in LSNO (0.125). Our results underscore the profound impact of orbital hybridization on the electronic structure and the formation of plasmons in strongly correlated systems. This in turn suggests that LSNO could serve as a promising alternative material in optoelectronic devices.</p>","PeriodicalId":23,"journal":{"name":"ACS Photonics","volume":"11 6","pages":"2324–2334"},"PeriodicalIF":6.7000,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Tunable Collective Excitations in Epitaxial Perovskite Nickelates\",\"authors\":\"Mengxia Sun, Xu He, Mingyao Chen, Chi Sin Tang*, Xiongfang Liu, Liang Dai, Jishan Liu, Zhigang Zeng, Shuo Sun, Mark B. H. Breese, Chuanbing Cai, Le Wang*, Yingge Du, Andrew T. S. Wee and Xinmao Yin*, \",\"doi\":\"10.1021/acsphotonics.4c00210\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The formation of plasmons through the collective excitation of charge density has generated intense discussions, offering insights into fundamental sciences and potential applications. While the underlying physical principles have been well-established, the effects of many-body interactions and orbital hybridization on plasmonic dynamics remain understudied. In this work, we present the observation of conventional metallic and correlated plasmons in epitaxial La<sub>1–<i>x</i></sub>Sr<sub><i>x</i></sub>NiO<sub>3</sub> (LSNO) films with varying Sr doping concentrations (<i>x</i> = 0, 0.125, 0.25), unveiling their intriguing evolution. Unlike samples at other doping concentrations, the <i>x</i> = 0.125 intermediate doping sample does not exhibit the correlated plasmons despite showing high optical conductivity. Through a comprehensive experimental investigation using spectroscopic ellipsometry and X-ray absorption spectroscopy, the O2p-Ni3d orbital hybridization for LSNO with a doping concentration of <i>x</i> = 0.125 is found to be significantly enhanced, alongside a considerable weakening of its effective correlation <i>U</i>*. These factors account for the absence of correlated plasmons and the high optical conductivity observed in LSNO (0.125). Our results underscore the profound impact of orbital hybridization on the electronic structure and the formation of plasmons in strongly correlated systems. 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Tunable Collective Excitations in Epitaxial Perovskite Nickelates
The formation of plasmons through the collective excitation of charge density has generated intense discussions, offering insights into fundamental sciences and potential applications. While the underlying physical principles have been well-established, the effects of many-body interactions and orbital hybridization on plasmonic dynamics remain understudied. In this work, we present the observation of conventional metallic and correlated plasmons in epitaxial La1–xSrxNiO3 (LSNO) films with varying Sr doping concentrations (x = 0, 0.125, 0.25), unveiling their intriguing evolution. Unlike samples at other doping concentrations, the x = 0.125 intermediate doping sample does not exhibit the correlated plasmons despite showing high optical conductivity. Through a comprehensive experimental investigation using spectroscopic ellipsometry and X-ray absorption spectroscopy, the O2p-Ni3d orbital hybridization for LSNO with a doping concentration of x = 0.125 is found to be significantly enhanced, alongside a considerable weakening of its effective correlation U*. These factors account for the absence of correlated plasmons and the high optical conductivity observed in LSNO (0.125). Our results underscore the profound impact of orbital hybridization on the electronic structure and the formation of plasmons in strongly correlated systems. This in turn suggests that LSNO could serve as a promising alternative material in optoelectronic devices.
期刊介绍:
Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.