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Precise predictions for t t ˉ γ / t t ˉ $$ toverline{t}gamma /toverline{t} $$ cross section ratios at the LHC

机译: t < 移动版=“真实”> t ˉ γ / < / mo> t t ˉ $$ t overline {t} gamma / t overline {t} $$ LHC的横截面比率

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A bstract With the goal of increasing the precision of NLO QCD predictions for the pp → t t ˉ γ $$ ppo toverline{t}gamma $$ process in the di-lepton top quark decay channel we present theoretical predictions for the ? = σ t t ˉ γ / σ t t ˉ $$ mathrm{mathcal{R}}={sigma}_{toverline{t}gamma }/{sigma}_{toverline{t}} $$ cross section ratio. Results for the latter together with various differential cross section ratios are given for the LHC with the Run II energy of s = 13 $$ sqrt{s}=13 $$ TeV. Fully realistic NLO computations for t t ˉ $$ toverline{t} $$ and t t ˉ γ $$ toverline{t}gamma $$ production are employed. They are based on matrix elements for e + ν e μ ? ν ˉ μ b b ˉ $$ {e}^{+}{u}_e{mu}^{-}{overline{u}}_{mu }boverline{b} $$ and e + ν e μ ? ν ˉ μ b b ˉ γ $$ {e}^{+}{u}_e{mu}^{-}{overline{u}}_{mu }boverline{b}gamma $$ processes and include all resonant and non-resonant diagrams, interferences, and off-shell effects of the top quarks and the W gauge bosons. Various renormalisation and factorisation scale choices and parton density functions are examined to assess their impact on the cross section ratio. Depending on the transverse momentum cut on the hard photon a judicious choice of a dynamical scale allows us to obtain 1%–3% percent precision on ? $$ mathrm{mathcal{R}} $$ . Moreover, for differential cross section ratios theoretical uncertainties in the range of 1%-6% have been estimated. Until now such high precision predictions have only been reserved for the top quark pair production at NNLO QCD. Thus, ? $$ mathrm{mathcal{R}} $$ at NLO in QCD represents a very precise observable to be measured at the LHC for example to study the top quark charge asymmetry or to probe the strength and the structure of the t - t ˉ $$ overline{t} $$ -γ vertex. The latter can shed some light on possible new physics that can reveal itself only once sufficiently precise theoretical predictions are available.
机译:甲bstract随着NLO QCD预测的精度为PP→TTˉγ$$ PP 至t {划线吨} 伽马$$过程在二轻子顶夸克的目标衰减信道我们对本理论预测这 ? =σTTˉγ/σTTˉ$$ mathrm { mathcal {R}} = {西格玛} _ {吨 {划线吨} 伽马} / {西格玛} _ {吨 {划线吨}} $$截面比。结果与各种微分截面比后者一起给出了与S的运行II能量的LHC = 13 $$ SQRT {S} = 13 $$ TeV的。充分现实NLO计算对于t吨ˉ$$吨 {划线T】$$和吨吨ˉγ$$吨 {划线吨} 伽马$$生产中采用。它们是基于对E +νËμ矩阵元素? νˉμBBˉ$$ {E} ^ {+} { NU} _E {亩} ^ { - } {划线{ NU}} _ {亩} b 划线{B} $$和e +νèμ? νˉμBBˉγ$$ {E} ^ {+} { NU} _E {亩} ^ { - } {划线{ NU}} _ {亩} b 划线{B} 伽马$ $过程和包括所有谐振和非谐振图,干扰,和顶夸克脱壳效应和W规范玻色子。各种再归一化和比例因子分解的选择和部分子密度函数被检查,以评估其对截面比的影响。根据对硬光子一个动态量程的明智选择允许横向运动量下调美国获得1%-3%的百分比精度上? $$ mathrm { mathcal {R}} $$。此外,用于微分截面比为1%的范围内-6%的理论不确定性估计。到现在为止这种高精度的预测只留给了顶夸克对生产的NNLO QCD。因此, ? $$ mathrm { mathcal {R}} $$在NLO在QCD表示一个非常精确的可观察到在LHC来测量例如研究顶夸克电荷不对称或探测强度和T的结构 - 吨ˉ$$ {划线T】$$-γ顶点。后者可以在可能的新的物理,可以揭示本身只有一次足够精确的理论预测是可以提供一些线索。

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