Quick Navigation

Topics

Spin Qubits Silicon Quantum Computing Quantum Device Fabrication Process Engineering Quantum Chemistry Quantum Simulation

Suppression of mild steel corrosion in acidic niche by synergistic inhibition effect of zinc oxide nanoparticle-expired clindamycin drug: synthesis, characterization, acidimetric, electrochemical, and computational investigations

OpenAlex
Authors: Abuchi Elebo, Uba Sani, Patricia Adamma Ekwumemgbo, V.O. Ajibola

Year

2026

Paper ID

25406

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

194

Citations

0

Abstract

Fabricating a new, effective, and environmentally friendly corrosion inhibitor is essential for protecting mild steel (MS) in acidic environments. For the first time, a blend of zinc oxide nanoparticles (ZnONPs) and expired clindamycin (ECLI) was used to mitigate MS corrosion in an acidic niche. The ZnONPs synthesized from Opuntia fragalis leaves (OFL) were characterized using UV-vis, SEM, XRD, and FT-IR spectroscopy. The corrosion inhibition efficacy was examined using weight loss via the central composite design-response surface methodology (CCD-RSM), acidimetric, electrochemical, surface topology, quantum chemical calculations (QCC), and molecular dynamics simulation (MDS). The findings demonstrated that the synergy between ECLI and ZnONPs (ECLI-ZnONPs) significantly inhibited MS corrosion, with an inhibition efficiency of 84.24% compared to the single inhibitor at 65.82%, thereby exhibiting a cooperative synergistic effect (synergy > 1). Potentiodynamic polarization investigations revealed that ECLI-ZnONPs function as a mixed-type inhibitor. The EIS results showed that as the inhibitor was incorporated into the HCl solution, the charge-transfer resistance increased, which is attributed to the adsorption of the synergised inhibitors onto the surface of MS. The structure-activity relationship between the molecular conformation of the blend ECLI-ZnONPs and its corrosion inhibition efficiency was visualized using QCC and MDS to elucidate molecular-level interactions.

Why This Paper Matters

  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
  • It adds a 2026 reference point for readers tracking recent quantum research.
  • Fabricating a new, effective, and environmentally friendly corrosion inhibitor is essential for protecting mild steel (MS) in acidic environments.

Paper Tools

Become a member to use research tools

Sign in to open papers, visit source links, share, cite, compare, copy DOI links, request category corrections, and build your reading list.

Publisher Share Cite This Paper Copy URL Compare Copy DOI Add to Reading List Category Correction Request

References & Citation Signals

Local Citation Graph (Related-Paper Links)

Current Paper #25406 #68440 Classical State Preparation for... #68437 Transition-state lattice modes ... #68401 Quantum Ghost Spectroscopy Reve... #68474 Concentration-Free Quantum Kern...

External citation index: OpenAlex citation signal • updated 2026-06-12 15:33:10

Community Reactions

Quick sentiment from readers on this paper.

Score: 0
Likes: 0 Dislikes: 0

Sign in to react to this paper.

Discussion & Reviews (Moderated)

Average Rating: 0.0 / 5 (0 ratings)

No written reviews yet.