Disentangling Competitive and Synergistic Chemical Reactivities During the Seeded Growth of High-Entropy Alloys on High-Entropy Metal Sulfide Nanoparticles

被引:7
|
作者
Veglak, Joseph M. [1 ]
Tsai, Aaron [1 ]
Soliman, Samuel S. [1 ]
Dey, Gaurav R. [1 ]
Schaak, Raymond E. [1 ,2 ,3 ]
机构
[1] Penn State Univ, Dept Chem, University Pk, PA 16802 USA
[2] Penn State Univ, Dept Chem Engn, University Pk, PA 16802 USA
[3] Penn State Univ, Mat Res Inst, University Pk, PA 16802 USA
基金
美国国家科学基金会;
关键词
CATION-EXCHANGE; CRYSTAL-STRUCTURE; STATE; MORPHOLOGY;
D O I
10.1021/jacs.4c06412
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The seeded growth of one type of nanoparticle on the surface of another is foundational to synthesizing many multifunctional nanostructures. High-entropy nanoparticles that randomly incorporate five or more elements offer enhanced properties due to synergistic interactions. Incorporating high-entropy nanoparticles into seeded growth platforms is essential for merging their unique properties with the functional enhancements that arise from particle-particle interactions. However, the complex compositions of high-entropy materials complicate the seeded growth process due to competing particle growth and chemical reactivity pathways. Here, we design and synthesize a 36-member nanoparticle library to identify and disentangle these competitive interactions, ultimately defining chemical characteristics that underpin the seeded growth of high-entropy alloys on high-entropy metal sulfide nanoparticles. As a model system, we focus on (Cu,Zn,Co,In,Ga)S-SnPdPtRhIr, which combines a high-entropy metal sulfide semiconductor with a high-entropy alloy catalyst. We study the seeded growth of all possible pairwise combinations of Sn, Pd, Pt, Rh, Ir, and SnPdPtRhIr on the metal sulfides Cu1.8S, ZnS, Co9S8, CuInS2, CuGaS2, and (Cu,Zn,Co,In,Ga)S, which have comparable morphologies and sizes. Through these studies, we uncover unexpected chemical reactivities, including cation exchange, redox reactions, and diffusion. Reaction temperature, threshold reduction potentials, metal/sulfide chemical reactivity, and the relative strengths of the various bonds that could be formed during particle growth emerge as the primary factors that underpin seeded growth. Finally, we disentangle these competitive and synergistic chemical reactivities to generate a reactivity map that provides practical guidelines for achieving seeded growth in compositionally complex systems.
引用
收藏
页码:19521 / 19536
页数:16
相关论文
共 50 条
  • [1] Disentangling diffusion heterogeneity in high-entropy alloys
    Wang, Yi-Zhou
    Wang, Yun-Jiang
    ACTA MATERIALIA, 2022, 224
  • [2] From High-Entropy Alloys to High-Entropy Steels
    Raabe, Dierk
    Tasan, Cemal Cem
    Springer, Hauke
    Bausch, Michael
    STEEL RESEARCH INTERNATIONAL, 2015, 86 (10) : 1127 - 1138
  • [3] High-entropy alloys
    Easo P. George
    Dierk Raabe
    Robert O. Ritchie
    Nature Reviews Materials, 2019, 4 : 515 - 534
  • [4] High-Entropy Alloys
    Zhang, Yong
    Yeh, Jien-Wei
    Sun, Jian F.
    Lin, Jun P.
    Yao, Ke-Fu
    ADVANCES IN MATERIALS SCIENCE AND ENGINEERING, 2015, 2015
  • [5] High-entropy alloys
    Canter, Neil
    TRIBOLOGY & LUBRICATION TECHNOLOGY, 2015, 71 (03) : 14 - 15
  • [6] High-entropy alloys
    George, Easo P.
    Raabe, Dierk
    Ritchie, Robert O.
    NATURE REVIEWS MATERIALS, 2019, 4 (08) : 515 - 534
  • [7] Local Chemical Order in High-Entropy Alloys
    Ding Jun
    Wang Zhangjie
    ACTA METALLURGICA SINICA, 2021, 57 (04) : 413 - 424
  • [8] Simultaneous Multication Exchange Pathway to High-Entropy Metal Sulfide Nanoparticles
    McCormick, Connor R.
    Schaak, Raymond E.
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2021, 143 (02) : 1017 - 1023
  • [10] Do "high-entropy alloys" have high entropy?
    Kucza, Witold
    JOURNAL OF MATERIALS RESEARCH, 2025,