Literature DB >> 24132232

Exploiting dimensionality and defect mitigation to create tunable microwave dielectrics.

Che-Hui Lee1, Nathan D Orloff, Turan Birol, Ye Zhu, Veronica Goian, Eduard Rocas, Ryan Haislmaier, Eftihia Vlahos, Julia A Mundy, Lena F Kourkoutis, Yuefeng Nie, Michael D Biegalski, Jingshu Zhang, Margitta Bernhagen, Nicole A Benedek, Yongsam Kim, Joel D Brock, Reinhard Uecker, X X Xi, Venkatraman Gopalan, Dmitry Nuzhnyy, Stanislav Kamba, David A Muller, Ichiro Takeuchi, James C Booth, Craig J Fennie, Darrell G Schlom.   

Abstract

The miniaturization and integration of frequency-agile microwave circuits--relevant to electronically tunable filters, antennas, resonators and phase shifters--with microelectronics offers tantalizing device possibilities, yet requires thin films whose dielectric constant at gigahertz frequencies can be tuned by applying a quasi-static electric field. Appropriate systems such as BaxSr1-xTiO3 have a paraelectric-ferroelectric transition just below ambient temperature, providing high tunability. Unfortunately, such films suffer significant losses arising from defects. Recognizing that progress is stymied by dielectric loss, we start with a system with exceptionally low loss--Srn+1TinO3n+1 phases--in which (SrO)2 crystallographic shear planes provide an alternative to the formation of point defects for accommodating non-stoichiometry. Here we report the experimental realization of a highly tunable ground state arising from the emergence of a local ferroelectric instability in biaxially strained Srn+1TinO3n+1 phases with n ≥ 3 at frequencies up to 125 GHz. In contrast to traditional methods of modifying ferroelectrics-doping or strain-in this unique system an increase in the separation between the (SrO)2 planes, which can be achieved by changing n, bolsters the local ferroelectric instability. This new control parameter, n, can be exploited to achieve a figure of merit at room temperature that rivals all known tunable microwave dielectrics.

Year:  2013        PMID: 24132232     DOI: 10.1038/nature12582

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


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  7 in total
  19 in total

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Authors:  Yoon Seok Oh; Xuan Luo; Fei-Ting Huang; Yazhong Wang; Sang-Wook Cheong
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Authors:  Woo Seok Choi; Sang A Lee; Jeong Ho You; Suyoun Lee; Ho Nyung Lee
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5.  Mixed dimensionality weaves exotic behaviour into superlattices.

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7.  Epitaxial-strain-induced polar-to-nonpolar transitions in layered oxides.

Authors:  Xue-Zeng Lu; James M Rondinelli
Journal:  Nat Mater       Date:  2016-06-13       Impact factor: 43.841

8.  Atomic scale symmetry and polar nanoclusters in the paraelectric phase of ferroelectric materials.

Authors:  Andreja Bencan; Emad Oveisi; Sina Hashemizadeh; Vignaswaran K Veerapandiyan; Takuya Hoshina; Tadej Rojac; Marco Deluca; Goran Drazic; Dragan Damjanovic
Journal:  Nat Commun       Date:  2021-06-09       Impact factor: 14.919

9.  Suppression of creep-regime dynamics in epitaxial ferroelectric BiFeO3 films.

Authors:  Y J Shin; B C Jeon; S M Yang; I Hwang; M R Cho; D Sando; S R Lee; J-G Yoon; T W Noh
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10.  Structural, optical and vibrational properties of self-assembled Pbn+1(Ti1-x Fex)nO(3n+1)-δ Ruddlesden-Popper superstructures.

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