» Articles » PMID: 20972490

Synthesis and Properties of Colloidal Heteronanocrystals

Overview
Journal Chem Soc Rev
Specialty Chemistry
Date 2010 Oct 26
PMID 20972490
Citations 89
Authors
Affiliations
Soon will be listed here.
Abstract

Colloidal heteronanocrystals (HNCs) can be regarded as solution-grown inorganic-organic hybrid nanomaterials, since they consist of inorganic nanoparticles that are coated with a layer of organic ligand molecules. The hybrid nature of these nanostructures provides great flexibility in engineering their physical and chemical properties. The inorganic particles are heterostructured, i.e. they comprise two (or more) different materials joined together, what gives them remarkable and unique properties that can be controlled by the composition, size and shape of each component of the HNC. The interaction between the inorganic component and the organic ligand molecules allows the size and shape of the HNCs to be controlled and gives rise to novel properties. Moreover, the organic surfactant layer opens up the possibility of surface chemistry manipulation, making it possible to tailor a number of properties. These features have turned colloidal HNCs into promising materials for a number of applications, spurring a growing interest on the investigation of their preparation and properties. This critical review provides an overview of recent developments in this rapidly expanding field, with emphasis on semiconductor HNCs (e.g., quantum dots and quantum rods). In addition to defining the state of the art and highlighting the key issues in the field, this review addresses the fundamental physical and chemical principles needed to understand the properties and preparation of colloidal HNCs (283 references).

Citing Articles

Flexible Cation Exchange Environment via Ligand-Free Metal Chalcogenide Thin Films.

Lacey H, Dobson K, Hernandez-Pagan E ACS Nanosci Au. 2025; 5(1):9-20.

PMID: 39990110 PMC: 11843514. DOI: 10.1021/acsnanoscienceau.4c00023.


Optical signatures of lattice strain in chemically doped colloidal quantum wells.

Yu J, Demir H, Sharma M Nat Commun. 2025; 16(1):823.

PMID: 39827252 PMC: 11743140. DOI: 10.1038/s41467-025-55984-x.


Unlocking early detection of Alzheimer's disease: The emerging role of nanomaterial-based optical sensors.

Chen C, Liang H, Wang C, Yang Y, Lin Y, Chen Y J Food Drug Anal. 2024; 32(3):296-324.

PMID: 39636776 PMC: 11464041. DOI: 10.38212/2224-6614.3520.


Experimental demonstration of weak chirality enhancement by hybrid perovskite nanocrystals using photonic spin Hall effect.

Lai Z, Lin S, Shi Y, Li M, Liu G, Tian B Nanophotonics. 2024; 11(18):4245-4251.

PMID: 39634531 PMC: 11614339. DOI: 10.1515/nanoph-2022-0313.


Surface Reconstructions in II-VI Quantum Dots.

Llusar J, du Fosse I, Hens Z, Houtepen A, Infante I ACS Nano. 2024; 18(2):1563-1572.

PMID: 38169474 PMC: 10795476. DOI: 10.1021/acsnano.3c09265.