1.
Disposable Electrochemical Immunosensor by Using Carbon Sphere/Gold Nanoparticle Composites as Labels for Signal Amplification
by Xu, Qiunan
Chemistry – A European Journal, 16 April 2012, Vol.18(16), pp.4994-4998

2.
Dopamine-mediated immunoassay for bacteria detection
by Wan, Yi
Analytical and Bioanalytical Chemistry, 2017, Vol.409(26), pp.6091-6096

3.
Development of quantum-dot-encapsulated liposome-based optical nanobiosensor for detection of telomerase activity without target amplification
by Zavari-Nematabad, Ali
Analytical and Bioanalytical Chemistry, 2017, Vol.409(5), pp.1301-1310

4.
A Nanoparticle‐Decorated Biomolecule‐Responsive Polymer Enables Robust Signaling Cascade for Biosensing
by Lin, Zuan‐Tao
Advanced Materials, August 2017, Vol.29(31), pp.n/a-n/a

5.
Nucleic acid tool enzymes-aided signal amplification strategy for biochemical analysis: status and challenges
by Qing, Taiping
Analytical and Bioanalytical Chemistry, 2016, Vol.408(11), pp.2793-2811

6.
Utilization of nanoparticle labels for signal amplification in ultrasensitive electrochemical affinity biosensors: A review
by Ding, Liang
Analytica Chimica Acta, 03 October 2013, Vol.797, pp.1-12

7.
Ultrasensitive DNA Detection by Cascade Enzymatic Signal Amplification Based on Afu Flap Endonuclease Coupled with Nicking Endonuclease
by Zou, Bingjie
Angewandte Chemie International Edition, 01 August 2011, Vol.50(32), pp.7395-7398

8.
NMR Signal Enhancement by Effective SABRE Labeling of Oligopeptides
by Ratajczyk, Tomasz
Chemistry – A European Journal, 01 September 2015, Vol.21(36), pp.12616-12619

9.
Frontispiece: Hexametaphosphate‐Capped Silica Mesoporous Nanoparticles Containing CuII Complexes for the Selective and Sensitive Optical Detection of Hydrogen Sulfide in Water
by El Sayed, Sameh
Chemistry – A European Journal, 04 May 2015, Vol.21(19), pp.n/a-n/a

10.
Hexametaphosphate‐Capped Silica Mesoporous Nanoparticles Containing CuII Complexes for the Selective and Sensitive Optical Detection of Hydrogen Sulfide in Water
by El Sayed, Sameh
Chemistry – A European Journal, 04 May 2015, Vol.21(19), pp.7002-7006

11.
Graphene Oxide Protected Nucleic Acid Probes for Bioanalysis and Biomedicine
by Cui, Liang
Chemistry – A European Journal, 05 August 2013, Vol.19(32), pp.10442-10451

12.
Label‐Free Detection of MicroRNA: Two‐Step Signal Enhancement with a Hairpin‐Probe‐Based Graphene Fluorescence Switch and Isothermal Amplification
by Zhu, Xiao
Chemistry – A European Journal, 22 April 2013, Vol.19(17), pp.5487-5494

13.
Sensitive protein microarray synergistically amplified by polymer brush-enhanced immobilizations of both probe and reporter
by Liu, Yingshuai
Journal of Colloid And Interface Science, 15 August 2011, Vol.360(2), pp.593-599

14.
Nuclease assisted target recycling and spherical nucleic acids gold nanoparticles recruitment for ultrasensitive detection of microRNA
by Miao, Peng
Electrochimica Acta, 01 February 2016, Vol.190, pp.396-401

15.
Signal-amplification detection of small molecules by use of Mg 2+ - dependent DNAzyme
by Guo, Zhijun
Analytical and Bioanalytical Chemistry, 2013, Vol.405(12), pp.4051-4057

16.
Sensitive detection of Escherichia coli O157:H7 based on cascade signal amplification in ELISA
by Shan, Shan
Journal of Dairy Science, September 2016, Vol.99(9), pp.7025-7032

17.
Signal Amplification by Glyco‐qPCR for Ultrasensitive Detection of Carbohydrates: Applications in Glycobiology
by Kwon, Seok Joon
Angewandte Chemie International Edition, 19 November 2012, Vol.51(47), pp.11800-11804

18.
DNA Detection Based on Fluorogenic Nanospheres
by Shu, Xin
Angewandte Chemie International Edition, 29 October 2012, Vol.51(44), pp.11006-11009

19.
Modular Assembly of a Pd Catalyst within a DNA Scaffold for the Amplified Colorimetric and Fluorimetric Detection of Nucleic Acids
by Prusty, Deepak K.
Angewandte Chemie International Edition, 19 November 2012, Vol.51(47), pp.11894-11898

20.
Multi‐Level Logic Gate Operation Based on Amplified Aptasensor Performance
by Feng, Lingyan
Angewandte Chemie International Edition, 22 June 2015, Vol.54(26), pp.7693-7697
