Skip to main content
construction release_alert
Profile editing will be unavailable for Scholars@Duke profiles from June 11-24, 2026 as manual profile data entry transitions to Elements. More information about the transition.
cancel
Journal cover image

Integrated OPECT and Smartphone Colorimetry Dual‐Mode Detection of Okadaic Acid Based on Ce‐MOF Modified MXene@SnO2 Z‐Scheme Heterostructure

Publication ,  Journal Article
Chi, J; Ju, P; Bi, F; Jiang, T; Wen, S; Cai, Y; Wang, L; Qiu, M
Published in: Advanced Functional Materials
February 2025

The organic photoelectrochemical transistor (OPECT) biosensing relies solely on a singular signal readout inherently, which restrains the precision and dependability nestled within pertinent biological measurements. Herein, a high‐precision magnetic assisted OPECT and smartphone colorimetric (SCL) dual‐mode biosensing platform is first established for detecting harmful algal toxin okadaic acid (OA) by biocatalytic reaction. MXene@SnO‐Ce‐MOF (MXSnO/Ce‐MOF) Z‐scheme heterojunctions with abundant oxygen vacancies are prepared as photoactive materials. Initially, in the presence of OA, the coupling of trigger DNA (tDNA) to magnetic beads (MBs) via anchor DNA (aDNA) is released through the interaction of the target analyte with the aptamer. Subsequently, the carried tDNA triggers HCR between the two hairpin sequences, producing long double helix chains to capture glucose oxidase (GOx). The obtained GOx supernatant catalyzes glucose to produce HO, which can oxidize Ce‐MOF, leading to the alteration of electrode color and a significant decrease in the overall photocurrent of MXSnO/Ce‐MOF. Crucially, the novel OPECT‐SCL biosensor exhibits excellent sensitivity and precision, boasting detection thresholds as low as 42.9 p and 1.2 n, respectively, and accomplishes the automated detection of OA within real samples. The proposed OPECT‐SCL dual‐signal measurement model constitutes a sensitive, portable, and precise platform for the quantification of marine toxins.

Duke Scholars

Published In

Advanced Functional Materials

DOI

EISSN

1616-3028

ISSN

1616-301X

Publication Date

February 2025

Volume

35

Issue

6

Publisher

Wiley

Related Subject Headings

  • Materials
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Chi, J., Ju, P., Bi, F., Jiang, T., Wen, S., Cai, Y., … Qiu, M. (2025). Integrated OPECT and Smartphone Colorimetry Dual‐Mode Detection of Okadaic Acid Based on Ce‐MOF Modified MXene@SnO2 Z‐Scheme Heterostructure. Advanced Functional Materials, 35(6). https://doi.org/10.1002/adfm.202415174
Chi, Jingtian, Peng Ju, Fan Bi, Tiantong Jiang, Siyu Wen, Yueyuan Cai, Ling Wang, and Meng Qiu. “Integrated OPECT and Smartphone Colorimetry Dual‐Mode Detection of Okadaic Acid Based on Ce‐MOF Modified MXene@SnO2 Z‐Scheme Heterostructure.” Advanced Functional Materials 35, no. 6 (February 2025). https://doi.org/10.1002/adfm.202415174.
Chi, Jingtian, et al. “Integrated OPECT and Smartphone Colorimetry Dual‐Mode Detection of Okadaic Acid Based on Ce‐MOF Modified MXene@SnO2 Z‐Scheme Heterostructure.” Advanced Functional Materials, vol. 35, no. 6, Wiley, Feb. 2025. Crossref, doi:10.1002/adfm.202415174.
Chi J, Ju P, Bi F, Jiang T, Wen S, Cai Y, Wang L, Qiu M. Integrated OPECT and Smartphone Colorimetry Dual‐Mode Detection of Okadaic Acid Based on Ce‐MOF Modified MXene@SnO2 Z‐Scheme Heterostructure. Advanced Functional Materials. Wiley; 2025 Feb;35(6).
Journal cover image

Published In

Advanced Functional Materials

DOI

EISSN

1616-3028

ISSN

1616-301X

Publication Date

February 2025

Volume

35

Issue

6

Publisher

Wiley

Related Subject Headings

  • Materials
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences