4.8 Article

High-yield synthesis of strong photoluminescent N-doped carbon nanodots derived from hydrosoluble chitosan for mercury ion sensing via smartphone APP

Journal

BIOSENSORS & BIOELECTRONICS
Volume 79, Issue -, Pages 1-8

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2015.11.085

Keywords

Nitrogen-doped carbon nanodots; Nitrogen-containing biomass; High-yield synthesis; Smartphone-based mercury ion sensor

Funding

  1. National Natural Science Foundation of China [51372051, 51321061]
  2. National Basic Science Research Program [2012CB339300]
  3. State Key Laboratory of Urban Water Resource and Environment of Harbin Institute of Technology [2013TS09]
  4. Innovation Talents of Harbin Science and Engineering [2013RFLXJ023]
  5. Fundamental Research Funds for Central Universities [HIT.IBRSEM.201302]
  6. Major International Joint Research Program of China [11120101002]
  7. International Science & Technology Cooperation Program of China [2013DFG02930]

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Photoluminescent carbon nanodots (CNDs) have offered considerable potential to be used in biomedical and environmental fields including live cell imaging and heavy metal ion detection due to their superior quantum emission efficiencies, ability to be functionalized using a variety of chemistries and apparent absence of toxicity. However, to date, synthetic yield of CNDs derived from biomass via hydrothermal carbonization is quite low. We report here the synthesis of nitrogen-doped carbon nanodots (N-doped CNDs) derived from hydrosoluble chitosan via hydrothermal carbonization. The synthetic yield could reach 38.4% which is 2.2-320 times increase compared with that from other biomass reported so far. These N-doped CNDs exhibited a high quantum yield (31.8%) as a consequence of nitrogen incorporation coincident with multiple types of functional groups (C=O, O-H, COOH, and NH2). We further demonstrate applications of N-doped CNDs as probes for live cell multicolor imaging and heavy metal ion detection. The N-doped CNDs offered potential as mercury ion sensors with detection limit of 80 nM. A smartphone application (APP) based on N-doped CNDs was developed for the first time providing a portable and low cost detection platform for detection of Hg2+ and alert of heavy metal ions contamination. (C) 2015 Elsevier B.V. All rights reserved.

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