TY - JOUR
T1 - Exploration of free energy surface and thermal effects on relative population and infrared spectrum of the be6b11− flux-ional cluster
AU - Buelna-Garcia, Carlos Emilano
AU - Cabellos, José Luis
AU - Quiroz-Castillo, Jesus Manuel
AU - Martinez-Guajardo, Gerardo
AU - Castillo-Quevedo, Cesar
AU - De-Leon-flores, Aned
AU - Anzueto-Sanchez, Gilberto
AU - Martin-Del-campo-solis, Martha Fabiola
N1 - Publisher Copyright:
© 2020 by the authors.
PY - 2021/1
Y1 - 2021/1
N2 - The starting point to understanding cluster properties is the putative global minimum and all the nearby local energy minima; however, locating them is computationally expensive and diffi-cult. The relative populations and spectroscopic properties that are a function of temperature can be approximately computed by employing statistical thermodynamics. Here, we investigate en-tropy-driven isomers distribution on Be6B11− clusters and the effect of temperature on their infrared spectroscopy and relative populations. We identify the vibration modes possessed by the cluster that significantly contribute to the zero-point energy. A couple of steps are considered for computing the temperature-dependent relative population: First, using a genetic algorithm coupled to density functional theory, we performed an extensive and systematic exploration of the potential/free energy surface of Be6B11− clusters to locate the putative global minimum and elucidate the low-en-ergy structures. Second, the relative populations’ temperature effects are determined by considering the thermodynamic properties and Boltzmann factors. The temperature-dependent relative populations show that the entropies and temperature are essential for determining the global minimum. We compute the temperature-dependent total infrared spectra employing the Boltzmann factor weighted sums of each isomer’s infrared spectrum and find that at finite temperature, the total infrared spectrum is composed of an admixture of infrared spectra that corresponds to the spectra of the lowest-energy structure and its isomers located at higher energies. The methodology and results describe the thermal effects in the relative population and the infrared spectra.
AB - The starting point to understanding cluster properties is the putative global minimum and all the nearby local energy minima; however, locating them is computationally expensive and diffi-cult. The relative populations and spectroscopic properties that are a function of temperature can be approximately computed by employing statistical thermodynamics. Here, we investigate en-tropy-driven isomers distribution on Be6B11− clusters and the effect of temperature on their infrared spectroscopy and relative populations. We identify the vibration modes possessed by the cluster that significantly contribute to the zero-point energy. A couple of steps are considered for computing the temperature-dependent relative population: First, using a genetic algorithm coupled to density functional theory, we performed an extensive and systematic exploration of the potential/free energy surface of Be6B11− clusters to locate the putative global minimum and elucidate the low-en-ergy structures. Second, the relative populations’ temperature effects are determined by considering the thermodynamic properties and Boltzmann factors. The temperature-dependent relative populations show that the entropies and temperature are essential for determining the global minimum. We compute the temperature-dependent total infrared spectra employing the Boltzmann factor weighted sums of each isomer’s infrared spectrum and find that at finite temperature, the total infrared spectrum is composed of an admixture of infrared spectra that corresponds to the spectra of the lowest-energy structure and its isomers located at higher energies. The methodology and results describe the thermal effects in the relative population and the infrared spectra.
KW - Boltzmann factors
KW - Boron cluster
KW - Density functional theory
KW - Entropy
KW - Fluxional
KW - Gibbs free energy
KW - Global minimum
KW - Grimme’s approach (DFT-D3)
KW - IR spectra
KW - Infrared spectrum
KW - Temperature
UR - http://www.scopus.com/inward/record.url?scp=85098575358&partnerID=8YFLogxK
U2 - 10.3390/ma14010112
DO - 10.3390/ma14010112
M3 - Artículo
C2 - 33383889
AN - SCOPUS:85098575358
SN - 1996-1944
VL - 14
SP - 1
EP - 28
JO - Materials
JF - Materials
IS - 1
M1 - 112
ER -