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Home NEWS Science News Chemistry

Scientists Decode the Atomic Birth of Nickel Thin Films

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October 5, 2026
in Chemistry
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Scientists Decode the Atomic Birth of Nickel Thin Films

Scientists Decode the Atomic Birth of Nickel Thin Films

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Every electroplated coating, from the chrome-like sheen on bathroom fittings to the nickel layers that protect electronics and catalytic components, begins with a moment of creation so small that it happens atom by atom on an electrode surface. A team of researchers in Maharashtra, India, has now mapped that moment in unusual detail, showing how the earliest instants of nickel electrodeposition determine whether the resulting thin film emerges smooth and compact or rough and cracked. Their study, published in Discover Electrochemistry, combines classic electrochemical theory with modern microscopy to link the invisible choreography of nuclei formation to the visible quality of industrial coatings.

The research team, led by Dipali Potdar of Jaysingpur College and Shivaji University together with colleagues including corresponding authors Shivaji Sadale and Prashant Chikode, electrodeposited nickel thin films onto 304-grade stainless steel substrates from simple sulfate baths. They systematically varied three parameters that any plating shop can control: the applied deposition potential, the pH of the electrolyte, and the concentration of nickel ions in solution. By sweeping nickel sulfate concentrations from 25 to 50 millimolar and adjusting pH from 4 to 8 with ammonium hydroxide, they created a matrix of deposition conditions whose effects could be traced all the way from current signatures to crystal structure.

The central analytical tool was the Scharifker-Hills model, a theoretical framework developed in 1983 that remains the workhorse for interpreting nucleation during electrodeposition. The model distinguishes between two limiting behaviors. In instantaneous nucleation, all active sites on the electrode surface are occupied essentially at once, so the number of nuclei is fixed from the start and each nucleus simply grows. In progressive nucleation, new sites continue to activate throughout the deposition, so the population of nuclei keeps increasing. The shape of the current-time transient, recorded when a fixed potential is applied, carries the fingerprint of whichever mechanism dominates, and comparing normalized experimental curves against the model’s dimensionless predictions reveals the mechanism at work.

Before diving into transients, the team used cyclic voltammetry to establish the electrochemical landscape of their bath. Sweeping the potential from 0.7 volts down to minus 1 volt against a silver-silver chloride reference electrode, they observed a stable current until an onset potential near minus 0.7 volts, followed by a rapid rise and a cathodic peak at minus 0.88 volts, which they attribute to the reduction of nickel ions on the stainless steel surface. A further surge at more negative potentials signaled the onset of the hydrogen evolution reaction, the parasitic process that plagues nickel plating by generating gas bubbles at the electrode. Two crossover points on the reverse scan, at minus 0.78 and minus 0.43 volts, marked the initiation of nucleation and the adsorption of nickel ions on the surface, while an anodic peak at minus 0.2 volts reflected nickel oxidation.

The voltammetry also revealed that the deposition reaction is diffusion-controlled. Recording curves at scan rates of 10, 20, and 30 millivolts per second, the researchers found that the anodic peak current density scaled linearly with the square root of the scan rate, exactly the relationship predicted by the Randles-Sevcik equation for a process limited by how fast nickel ions can travel to the electrode. This diffusion control proved crucial for interpreting everything that followed, because when ions arrive at the surface faster than they can be replenished from the bulk solution, the geometry of the depletion zones around growing nuclei shapes both the current response and the final film morphology.

Chronoamperometry, the recording of current as a function of time at a fixed applied potential, then exposed the three-act drama of nickel electrocrystallization. In the first fraction of a millisecond, a sharp spike and decay of current reflects double-layer charging and ion adsorption. A rapid rise follows as new nuclei form and each one draws a hemispherical diffusion zone around itself, pushing the current to a maximum. Beyond that peak, the current decays in a manner governed by the Cottrell equation, the classic signature of diffusion-limited mass transfer, before settling into a plateau where the supply of nickel ions from the bulk solution constrains everything. This characteristic profile confirmed that nickel deposition on stainless steel follows a three-dimensional nucleation process, with hemispherical clusters growing and eventually coalescing into a continuous film.

The comparison with the Scharifker-Hills model produced the study’s most striking finding: the nucleation mechanism is not fixed but shifts with deposition conditions. At underpotentials, where the driving force is modest, the transients tracked the progressive nucleation curve, because the nucleation rate lagged behind the growth rate and new sites kept activating. At overpotentials, the curves aligned closely with instantaneous nucleation, since the nucleation barrier is overcome quickly and a large population of nuclei forms simultaneously. At the reduction potential itself, a mixed mechanism appeared. Raising the bath pH from 4 to 8 pushed the system toward progressive nucleation, which the authors attribute to pH-dependent changes in hydroxide species and surface energetics that favor the continuous creation of new nucleation sites over time.

Concentration played an equally decisive role. Films grown from the most dilute 25 millimolar bath followed the instantaneous nucleation curve, while the 37 and 50 millimolar baths produced mixed instantaneous and progressive behavior, echoing earlier observations of silver deposition on glassy carbon. The team notes that experimental curves deviated from ideal theory in places, with a slower current decay than predicted, which they attribute to side processes such as hydrogen evolution, adsorption, and charge-transfer resistance. These deviations are a reminder that real plating baths are chemically messy systems, and that the clean limiting cases of nucleation theory blend into one another under practical conditions.

What makes the study compelling is that the electrochemical fingerprints translated directly into physical film quality. X-ray diffraction confirmed the cubic crystal structure of nickel in every film, with a prominent reflection from the (111) planes at 44.5 degrees, and the Williamson-Hall analysis of peak broadening revealed compressive microstrain induced by the stainless steel substrate. Notably, crystallite size, lattice constant, and texture coefficient barely changed across the parameter range, but strain and dislocation density dropped to negligible levels at the highest pH and concentration. Meanwhile, field-emission scanning electron microscopy showed a dramatic morphological transition: films from acidic, dilute baths were rough and cracked, riddled with grain boundaries, while films from alkaline, concentrated baths were smooth, uniform, and compact. The culprit behind the cracking is the hydrogen evolution reaction, whose disruptive bubbles and induced internal stress scar the growing film at low pH but are largely suppressed in alkaline conditions.

The practical implications ripple outward from the plating bath. The authors point out that cracked, fine-grained films with abundant grain boundaries resist dislocation movement and are therefore harder, but the same boundaries promote corrosion, whereas the coarser, compact films grown at higher pH and concentration conduct electricity better and resist corrosion. Because nickel coatings serve industries ranging from metal decoration and electronic components to catalysis and energy storage, the ability to dial in a specific nucleation mechanism and morphology through nothing more exotic than pH, concentration, and potential offers a low-cost route to tailored coatings. The researchers acknowledge support from the Mahatma Jyotiba Phule Research and Training Institute, and their work stands as a reminder that some of the most consequential physics in manufacturing happens in the first milliseconds, when a handful of atoms decides what kind of surface the world will see.

Subject of Research: Nucleation and growth kinetics during the electrodeposition of nickel thin films on stainless steel

Article Title: Studies on nucleation and growth kinetics during electrodeposition of nickel thin films

Article References: Potdar, D., Patil, S., Kulkarni, Y., Pawar, N., Banne, S., Sadale, S., & Chikode, P. (2026). Studies on nucleation and growth kinetics during electrodeposition of nickel thin films. Discover Electrochemistry, 3(1), Article 29. https://doi.org/10.1007/s44373-026-00115-4

Image Credits: AI Generated

DOI: 10.1007/s44373-026-00115-4

Keywords: electrodeposition, nickel thin films, nucleation kinetics, Scharifker-Hills model, chronoamperometry, cyclic voltammetry, stainless steel substrate, hydrogen evolution reaction, X-ray diffraction, FESEM, bath pH, crystal growth

News Source: Bethany Barker. (October 5, 2026). Scientists Decode the Atomic Birth of Nickel Thin Films. Scienmag.

Tags: bath pHchronoamperometrycrystal growthcyclic voltammetryelectrodepositionFESEMHydrogen evolution reactionnickel thin filmsnucleation kineticsScharifker-Hills modelstainless steel substrateX-ray diffraction
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