324 |
|
\hline |
325 |
|
& Calculated & Experimental \\ |
326 |
|
\hline |
327 |
< |
\multirow{2}{*}{\textbf{Pt-CO}} & \multirow{2}{*}{-1.9} & -1.4 \bibpunct{}{}{,}{n}{}{,} |
327 |
> |
\multirow{2}{*}{\textbf{Pt-CO}} & \multirow{2}{*}{-1.84} & -1.4 \bibpunct{}{}{,}{n}{}{,} |
328 |
|
(Ref. \protect\cite{Kelemen:1979}) \\ |
329 |
|
& & -1.9 \bibpunct{}{}{,}{n}{}{,} (Ref. \protect\cite{Yeo}) \\ \hline |
330 |
|
\textbf{Au-CO} & -0.39 & -0.40 \bibpunct{}{}{,}{n}{}{,} (Ref. \protect\cite{TPDGold}) \\ |
334 |
|
\end{table} |
335 |
|
|
336 |
|
|
337 |
< |
\subsection{Validation of forcefield selections} |
338 |
< |
By calculating minimum energies for commensurate systems of |
339 |
< |
single and double layer Pt and Au systems with 0 and 50\% coverages |
340 |
< |
(arranged in a c(2x4) pattern), our forcefield selections were able to be |
341 |
< |
indirectly compared to results shown in the supporting information of Tao |
342 |
< |
{\it et al.} \cite{Tao:2010}. Five layer thick systems, displaying a 557 facet |
343 |
< |
were constructed, each composed of 480 metal atoms. Double layers systems |
344 |
< |
were constructed from six layer thick systems where an entire layer was |
345 |
< |
removed from both displayed facets to create a double step. By design, the |
346 |
< |
double step system also contains 480 atoms, five layers thick, so energy |
347 |
< |
comparisons between the arrangements can be made directly. The positions |
348 |
< |
of the atoms were allowed to relax, along with the box sizes, before a |
349 |
< |
minimum energy was calculated. Carbon monoxide, equivalent to 50\% |
350 |
< |
coverage on one side of the metal system was added in a c(2x4) arrangement |
351 |
< |
and again allowed to relax before a minimum energy was calculated. |
337 |
> |
\subsection{Forcefield validation} |
338 |
> |
The CO-metal cross interactions were compared directly to DFT results |
339 |
> |
found in the supporting information of Tao {\it et al.} |
340 |
> |
\cite{Tao:2010} These calculations are estimates of the stabilization |
341 |
> |
energy provided to double-layer reconstructions of the perfect 557 |
342 |
> |
surface by an overlayer of CO molecules in a $c (2 \times 4)$ pattern. |
343 |
> |
To make the comparison, metal slabs that were five atoms thick and |
344 |
> |
which displayed a 557 facet were constructed. Double-layer |
345 |
> |
(reconstructed) systems were created using six atomic layers where |
346 |
> |
enough of a layer was removed from both exposed 557 facets to create |
347 |
> |
the double step. In all cases, the metal slabs contained 480 atoms |
348 |
> |
and were minimized using steepest descent under the EAM force |
349 |
> |
field. Both the bare metal slabs and slabs with 50\% carbon monoxide |
350 |
> |
coverage (arranged in the $c (2 \times 4)$ pattern) were used. The |
351 |
> |
systems are periodic along and perpendicular to the step-edge axes |
352 |
> |
with a large vacuum above the displayed 557 facet. |
353 |
|
|
354 |
< |
Energies for the various systems are displayed in Table ~\ref{tab:steps}. Examining |
355 |
< |
the Pt systems first, it is apparent that the double layer system is slightly less stable |
356 |
< |
then the original single step. However, upon addition of carbon monoxide, the |
357 |
< |
stability is reversed and the double layer system becomes more stable. This result |
358 |
< |
is in agreement with DFT calculations in Tao {\it et al.}\cite{Tao:2010}, who also show |
359 |
< |
that the addition of CO leads to a reversal in the most stable system. While our |
360 |
< |
results agree qualitatively, quantitatively, they are approximately an order of magnitude |
361 |
< |
different. Looking at additional stability per atom in kcal/mol, the DFT calculations suggest |
362 |
< |
an increased stability of 0.1 kcal/mol per Pt atom, whereas we are seeing closer to a 0.4 kcal/mol |
363 |
< |
increase in stability per Pt atom. |
363 |
< |
|
364 |
< |
The gold systems show a much smaller energy difference between the single and double |
365 |
< |
systems, likely arising from their lower energy per atom values. Additionally, the weaker |
366 |
< |
binding of CO to Au is evidenced by the much smaller energy change between the two systems, |
367 |
< |
when compared to the Pt results. This limited change helps explain our lack of any reconstruction |
368 |
< |
on the Au systems. |
354 |
> |
Energies using our force field for the various systems are displayed |
355 |
> |
in Table ~\ref{tab:steps}. The relative energies are calculated as |
356 |
> |
$E_{relative} = E_{system} - E_{M-557-S} - N_{CO} E_{CO-M}$, |
357 |
> |
where $E_{CO-M}$ is -1.84 eV for CO-Pt and -0.39 eV for CO-Au. For |
358 |
> |
platinum, the bare double layer is slightly less stable then the |
359 |
> |
original single (557) step. However, addition of carbon monoxide |
360 |
> |
stabilizes the reconstructed double layer relative to the perfect 557. |
361 |
> |
This result is in qualitative agreement with DFT calculations in Tao |
362 |
> |
{\it et al.}\cite{Tao:2010}, who also showed that the addition of CO |
363 |
> |
leads to a reversal in stability. |
364 |
|
|
365 |
+ |
The DFT calculations suggest an increased stability of 0.1 kcal/mol |
366 |
+ |
per Pt atom, while our force field gives an approximately 0.4 kcal/mol |
367 |
+ |
increase in stability per Pt atom. |
368 |
|
|
369 |
+ |
The gold systems show much smaller energy differences between the |
370 |
+ |
single and double layers. The weaker binding of CO to Au is evidenced |
371 |
+ |
by the much smaller change in relative energy between the structures |
372 |
+ |
when carbon monoxide is present. Additionally, as CO-Au binding is |
373 |
+ |
much weaker, it would be unlikely that CO would approach the 50\% |
374 |
+ |
coverage levels operating temperatures. |
375 |
+ |
|
376 |
|
%Table of single step double step calculations |
377 |
|
\begin{table}[H] |
378 |
< |
\caption{Minimized single point energies of unit cell crystals displaying (S)ingle or (D)double steps. Systems are periodic along and perpendicular to the step-edge axes with a large vacuum above the displayed 557 facet. The addition of CO in a 50\% c(2x4) coverage acts as a stabilizing presence and suggests a driving force for the observed reconstruction on the highest coverage Pt system. All energies are in kcal/mol.} |
378 |
> |
\caption{Minimized single point energies of (S)ingle and (D)ouble |
379 |
> |
steps. The addition of CO in a 50\% $c(2 \times 4)$ coverage acts as a |
380 |
> |
stabilizing presence and suggests a driving force for the observed |
381 |
> |
reconstruction on the highest coverage Pt system. All energies are |
382 |
> |
in kcal/mol.} |
383 |
|
\centering |
384 |
< |
\begin{tabular}{| c | c | c | c | c | c | c |} |
384 |
> |
\begin{tabular}{| c | c | c | c | c | c |} |
385 |
|
\hline |
386 |
< |
\textbf{Step} & \textbf{N}\textsubscript{M} & \textbf{N\textsubscript{CO}} & \textbf{Unit-Cell Energy} & \textbf{Energy per M} & \textbf{Energy per CO} & \textbf{Difference per M} \\ |
386 |
> |
\textbf{Step} & \textbf{N}\textsubscript{M} & \textbf{N\textsubscript{CO}} & \textbf{Relative Energy} & \textbf{$\Delta$E/M} & \textbf{$\Delta$E/CO} \\ |
387 |
|
\hline |
388 |
< |
Pt(557)-S & 480 & 0 & -61142.624 & -127.381 & - & 0 \\ |
389 |
< |
Pt(557)-D & 480 & 0 & -61027.841 & -127.141 & - & 0.240 \\ |
390 |
< |
\hline |
391 |
< |
Pt(557)-S & 480 & 40 & -62960.289 & -131.167 & -45.442 & 0 \\ |
383 |
< |
Pt(557)-D & 480 & 44 & -63040.007 & -131.333 & -45.731 & -0.166\\ |
388 |
> |
Pt(557)-S & 480 & 0 & 0 & 0 & - \\ |
389 |
> |
Pt(557)-D & 480 & 0 & 114.783 & 0.239 & -\\ |
390 |
> |
Pt(557)-S & 480 & 40 & -124.546 & -0.259 & -3.114\\ |
391 |
> |
Pt(557)-D & 480 & 44 & -34.953 & -0.073 & -0.794\\ |
392 |
|
\hline |
393 |
|
\hline |
394 |
< |
Au(557)-S & 480 & 0 & -41879.286 & -87.249 & - &0 \\ |
395 |
< |
Au(557)-D & 480 & 0 & -41799.714 & -87.084 & - & 0.165 \\ |
396 |
< |
\hline |
397 |
< |
Au(557)-S & 480 & 40 & -42423.899 & -88.381 & -13.615 & 0 \\ |
390 |
< |
Au(557)-D & 480 & 44 & -42428.738 & -88.393 & -14.296 & -0.012 \\ |
394 |
> |
Au(557)-S & 480 & 0 & 0 & 0 & - \\ |
395 |
> |
Au(557)-D & 480 & 0 & 79.572 & 0.166 & - \\ |
396 |
> |
Au(557)-S & 480 & 40 & -157.199 & -0.327 & -3.930\\ |
397 |
> |
Au(557)-D & 480 & 44 & -123.297 & -0.257 & -2.802 \\ |
398 |
|
\hline |
399 |
|
\end{tabular} |
400 |
|
\label{tab:steps} |