Urban Jeffrey J, Talapin Dmitri V, Shevchenko Elena V, Kagan Cherie R, Murray Christopher B
I.B.M. T. J. Watson Research Center, Nanoscale Materials and Devices Group, 1101 Kitchawan Road, Yorktown Heights, New York 10598, USA.
Nat Mater. 2007 Feb;6(2):115-21. doi: 10.1038/nmat1826. Epub 2007 Jan 21.
The ordered cocrystallization of nanoparticles into binary superlattices enables close contact of nanocrystals with distinct physical properties, providing a route to 'metamaterials' design. Here we present the first electronic measurements of multicomponent nanocrystal solids composed of PbTe and Ag(2)Te, demonstrating synergistic effects leading to enhanced p-type conductivity. First, syntheses of size-tuneable PbTe and Ag(2)Te nanocrystals are presented, along with deposition as thin-film nanocrystal solids, whose electronic transport properties are characterized. Next, assembly of PbTe and Ag(2)Te nanocrystals into AB binary nanocrystal superlattices is demonstrated. Furthermore, binary composites of varying PbTe-Ag(2)Te stoichiometry (1:1 and 5:1) are prepared and electronically characterized. These composites show strongly enhanced (conductance approximately 100-fold increased in 1:1 composites over the sum of individual conductances of single-component PbTe and Ag(2)Te films) p-type electronic conductivity. This observation, consistent with the role of Ag(2)Te as a p-type dopant in bulk PbTe, demonstrates that nanocrystals can behave as dopants in nanostructured assemblies.
纳米颗粒有序共结晶形成二元超晶格,使具有不同物理性质的纳米晶体紧密接触,为“超材料”设计提供了一条途径。在此,我们展示了对由PbTe和Ag₂Te组成的多组分纳米晶体固体的首次电学测量,证明了协同效应导致p型导电性增强。首先,介绍了尺寸可调的PbTe和Ag₂Te纳米晶体的合成方法,以及作为薄膜纳米晶体固体的沉积过程,并对其电子传输性质进行了表征。接下来,展示了将PbTe和Ag₂Te纳米晶体组装成AB二元纳米晶体超晶格的过程。此外,制备了不同PbTe-Ag₂Te化学计量比(1:1和5:1)的二元复合材料,并对其进行了电学表征。这些复合材料显示出p型电子导电性显著增强(1:1复合材料的电导率比单组分PbTe和Ag₂Te薄膜的电导率之和增加了约100倍)。这一观察结果与Ag₂Te在块状PbTe中作为p型掺杂剂的作用一致,表明纳米晶体在纳米结构组装中可以起到掺杂剂的作用。