Muhammad Avicenna Naradipa, Angga Dito Fauzi, Bin Leong Ong, Muhammad Aziz Majidi, Caozheng Diao, Ganesh Ji Omar, Ariando Ariando, Mark B. H. Breese, Eng Soon Tok, Andrivo Rusydi
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Unconventional plasmon is, on the other hand, a quasiparticle that originates from the collective excitation of correlated-charges, yet they are rarely explored, particularly in ferromagnetic insulator materials. Herewith, we present a novel, room temperature dopant-free ferromagnetic Mott-like insulator with a high-symmetry structure in unconventional strongly correlated s band of low-dimensional highly oriented single-crystal gold quantum dots (HOSG-QDs) on MgO(001). Interestingly, HOSG-QDs show new high-energy correlated-plasmons with low-plasmonics-loss. With a series of state-of-the-art experimental techniques, we find that the Mott-insulating state is tunable with surprisingly strong spin-splitting and spin polarization accompanied by strong s–s transitions, disappearance of Drude response, and generating new Mott-like gap. 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引用次数: 0
摘要
铁磁绝缘体和等离子体因其丰富的基础科学和应用而备受关注。近年来,人们一直在努力寻找强相关电子系统中的无掺杂铁磁绝缘体和独立的非常规等离子体。然而,我们对它们的了解仍然不足。现有的无掺杂铁磁绝缘体材料大多局限于复杂的 d 或 f 系统,具有极低的居里温度、低对称性结构以及在特定基底上的严格生长条件,限制了它们与工业应用的兼容性。另一方面,非常规等离子体是一种源自相关电荷集体激发的准粒子,但它们很少被探索,尤其是在铁磁绝缘体材料中。在此,我们展示了一种新型的室温无掺杂铁磁性莫特样绝缘体,它在氧化镁(001)上的低维高取向单晶金量子点(HOSG-QDs)的非常规强相关 S 波段中具有高对称性结构。有趣的是,HOSG-QDs 显示出新的高能量相关质子和低质子损耗。通过一系列最先进的实验技术,我们发现莫特绝缘态是可调的,具有惊人的强自旋分裂和自旋极化,同时伴有强 s-s 转变、德鲁德响应消失以及产生新的莫特样间隙。在一系列理论计算的支持下,量子约束、多体电子关联和杂化的相互作用调整了 s 波段的电子-电子关联,并决定了铁磁性、类莫特绝缘体和高能相关质子。我们的研究结果表明了一类新的室温无掺杂铁磁性类莫特绝缘体和在强相关 s 波段具有低损耗的高能相关等离子体,并开辟了低维金在自旋场效应晶体管和等离子体中的未探索应用。
Novel dopant-free ferromagnetic Mott-like insulator and high-energy correlated-plasmons in unconventional strongly correlated s band of low-dimensional gold
Ferromagnetic insulators and plasmons have attracted a lot of interest due to their rich fundamental science and applications. Recent research efforts have been made to find dopant-free ferromagnetic insulators and unconventional plasmons independently both in strongly correlated electron systems. However, our understanding of them is still lacking. Existing dopant-free ferromagnetic insulator materials are mostly limited to complex d- or f-systems with extremely low Curie temperature, low-symmetry structure, and strict growth conditions on specific substrates, limiting their compatibility with industrial applications. Unconventional plasmon is, on the other hand, a quasiparticle that originates from the collective excitation of correlated-charges, yet they are rarely explored, particularly in ferromagnetic insulator materials. Herewith, we present a novel, room temperature dopant-free ferromagnetic Mott-like insulator with a high-symmetry structure in unconventional strongly correlated s band of low-dimensional highly oriented single-crystal gold quantum dots (HOSG-QDs) on MgO(001). Interestingly, HOSG-QDs show new high-energy correlated-plasmons with low-plasmonics-loss. With a series of state-of-the-art experimental techniques, we find that the Mott-insulating state is tunable with surprisingly strong spin-splitting and spin polarization accompanied by strong s–s transitions, disappearance of Drude response, and generating new Mott-like gap. Supported with a series of theoretical calculations, the interplay of quantum confinement, many-body electronic correlations, and hybridizations tunes electron–electron correlations in s band and determines the ferromagnetism, Mott-like insulator, and high-energy correlated-plasmons. Our result shows a new class of room temperature dopant-free ferromagnetic Mott-like insulator and high-energy correlated-plasmons with low-loss in strongly correlated s band and opens unexplored applications of low-dimensional gold in spin field-effect transistors and plasmonics.
期刊介绍:
Applied Physics Reviews (APR) is a journal featuring articles on critical topics in experimental or theoretical research in applied physics and applications of physics to other scientific and engineering branches. The publication includes two main types of articles:
Original Research: These articles report on high-quality, novel research studies that are of significant interest to the applied physics community.
Reviews: Review articles in APR can either be authoritative and comprehensive assessments of established areas of applied physics or short, timely reviews of recent advances in established fields or emerging areas of applied physics.