Nanofluid-Enhanced Laser Lithotripsy Using Conducting Polymer Nanoparticles.

dc.contributor.author

Fan, Qingsong

dc.contributor.author

Chen, Junqin

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Mishra, Arpit

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Stewart, Aaron

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Anees, Faisal

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Chen, Ting-Hsuan

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Dominguez, Judith

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Payne, Christine

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Lipkin, Michael E

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Zhong, Pei

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Hsu, Po-Chun

dc.date.accessioned

2026-02-11T21:44:07Z

dc.date.available

2026-02-11T21:44:07Z

dc.date.issued

2025-12

dc.description.abstract

Urinary stone disease, characterized by the hard mineral deposits in the urinary tract, has seen a rising prevalence globally. This condition often leads to severe pain and requires medical intervention. Laser lithotripsy, a minimally invasive treatment, uses laser to fragment urinary stones to facilitate removal or natural passage. Among available laser technologies, Ho:YAG laser has established itself as the gold standard for three decades. Efforts to improve ablation efficiency have focused on laser parameters such as pulse energy and frequency. This study introduces an ablation enhancement strategy that incorporates nanoparticles with strong near-infrared absorption into the surrounding fluid to enhance light-matter interaction. Using 0.03 wt.% PEDOT:PSS nanofluid improves stone ablation efficiency by 38-727% in spot treatment and 26-75% in scanning treatment with a clinical Ho:YAG laser lithotripter. The highly absorbing nanofluid accelerates vapor tunnel formation, boosts laser energy transmission, and permeates stone pores to enhance damage, without increasing thermal tissue injury. Cytotoxicity tests also confirmed minimal toxicity at appropriate concentrations. This nanofluid-based approach offers a promising advancement for more efficient and safer laser lithotripsy. Further work should address the remaining challenges for clinical translation, including aggregation in saline, efficacy in real human kidney stones, and comprehensive animal studies.

dc.identifier.issn

2198-3844

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2198-3844

dc.identifier.uri

https://hdl.handle.net/10161/34179

dc.language

eng

dc.publisher

Wiley

dc.relation.ispartof

Advanced science (Weinheim, Baden-Wurttemberg, Germany)

dc.relation.isversionof

10.1002/advs.202507714

dc.rights.uri

https://creativecommons.org/licenses/by-nc/4.0

dc.subject

Animals

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Humans

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Urinary Calculi

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Polymers

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Lithotripsy, Laser

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Nanoparticles

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Lasers, Solid-State

dc.title

Nanofluid-Enhanced Laser Lithotripsy Using Conducting Polymer Nanoparticles.

dc.type

Journal article

duke.contributor.orcid

Mishra, Arpit|0000-0001-5207-937X

duke.contributor.orcid

Payne, Christine|0000-0002-2370-0101

pubs.begin-page

e07714

pubs.issue

48

pubs.organisational-group

Duke

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Pratt School of Engineering

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School of Medicine

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Staff

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Clinical Science Departments

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Biomedical Engineering

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Thomas Lord Department of Mechanical Engineering and Materials Science

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Urology

pubs.publication-status

Published

pubs.volume

12

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