Identifying Disordered Intermediates in the Reaction of Cu3– <i>x</i> P and Dibenzyl Diselenide to form Cu3PSe4 Nanoparticles

L Luke T. MacHale (Colorado State University , , , ,) L Lauren Borgia (Colorado State University , , , ,) M Monika J. Perez (Colorado State University , , , ,) N Nathan A. Neisius (Colorado State University , , , ,) I Ifeoluwa P. Oyekunle (Florida State University , , , ,) M Mirella K. Villani (Colorado State University , , , ,) B Bright O. Ogbolu (Florida State University , , , ,) E Erin R. Snyder (Colorado State University , , , ,) S Sadegh Yazdi (University of Colorado Boulder , , , ,) A Autumn N. Peters (Colorado State University , , , ,) Y Yan-Yan Hu (Florida State University , , , ,) J James R. Neilson (Colorado State University , , , ,) R Richard G. Finke (Colorado State University , , , ,) A Amy L. Prieto (Colorado State University , , , ,)

Abstract

Abstract Developing a detailed understanding of ternary nanoparticle (TNP) formation is essential for their optimized rational synthesis and development of synthetic routes for new TNPs. Herein, we explore the reaction of Cu3–xP and dibenzyl diselenide (Bn2Se2) to form colloidal Cu3PSe4 TNPs. Temperature-resolved X-ray scattering (XRD and PDF), electron microscopy (TEM and STEM), and spectroscopy (EDS, EELS, XPS, and MAS NMR) reveal that Cu3–xP reacts by surface coordination of Se leading to fragmentation followed by rearrangement to Cu–Se binary phases, during which all obvious crystalline P-containing phases disappear via XRD. However, partially oxidized P in solid phases was observed using STEM-EDS and XPS, in which P is found to preform P–Se bonds prior to Cu3PSe4 formation. Using a combination of 31P MAS NMR and PDF analysis obtained from synchrotron total scattering data, P–Se bonds in [PSe4]3– tetrahedral building blocks were identified within intermediate Cu–Se phases containing P cation substitution (PCu), denoted (Cu,P)–Se, that assemble into Cu3PSe4. We hypothesize that these intermediate compounds with their substoichiometric, vacancy-rich structures and significant Cu disorder are important for accessing Cu3PSe4─offering a new insight into complex TNP syntheses. We summarize our findings by writing plausible pseudoelementary steps (PESteps) in which the Cu3–xP precursor converts to smaller fragments of Cu–Se phases containing P en route to the final Cu3PSe4 product. Additional interesting aspects of this system include the use of Bn2Se2 as a readily monitorable probe for the reaction and the Se–P bond formation that facilitates Cu–P bond cleavage in an overall 8-electron redox reaction involving P3– and 4 Se0. The results obtained lay the groundwork for future mechanistic investigations, notably kinetics studies working from the PESteps aimed ultimately at the rational design and synthesis of complex ternary pnictogen chalcogenide nanoparticles.

Article Details

Volume / Issue Vol. 148, Issue 29
Published July 29, 2026
Pages 31130-31145
ISSN 0002-7863
Publisher American Chemical Society

Journal Info

Journal of the American Chemical Society

American Chemical Society

ISSN: 0002-7863 Physical Sciences

Authors (14)

L

Luke T. MacHale

Colorado State University , , , ,

L

Lauren Borgia

Colorado State University , , , ,

M

Monika J. Perez

Colorado State University , , , ,

N

Nathan A. Neisius

Colorado State University , , , ,

I

Ifeoluwa P. Oyekunle

Florida State University , , , ,

M

Mirella K. Villani

Colorado State University , , , ,

B

Bright O. Ogbolu

Florida State University , , , ,

E

Erin R. Snyder

Colorado State University , , , ,

S

Sadegh Yazdi

University of Colorado Boulder , , , ,

A

Autumn N. Peters

Colorado State University , , , ,

Y

Yan-Yan Hu

Florida State University , , , ,

J

James R. Neilson

Colorado State University , , , ,

R

Richard G. Finke

Colorado State University , , , ,

A

Amy L. Prieto

Colorado State University , , , ,